Australia's battery subsidies spark rooftop solar resurgence – gmanetwork.com

SINGAPORE/SYDNEY —For 64-year-old transport worker Paul Tyler, who lives 160 km (100 miles) north of Sydney, installing solar panels had long been financially out of reach.
Australia’s federal battery subsidy changed that, helping him cut upfront costs by 30% and install 18 solar panels and a 28-kilowatt-hour battery this year for A$9,000 ($6,247.80).
“I would never have afforded it if not for the subsidies,” he said, adding that his monthly power bill dropped to around A$50 from A$275.
Tyler is one of the hundreds of thousands of Australians driving a battery rush that is boosting new solar connections and upgrades to larger panels to store more power.
The rooftop solar boom shows how countries stifled by transmission line logjams can continue reducing emissions, analysts say.
Australians spent a collective A$8.69 billion on home batteries in the five months through May, according to a Reuters calculation based on average prices on the Solar Choice website and installations data from consultancy SunWiz.
The splurge followed the government’s decision in December to more than triple the value of its Cheaper Home Batteries Program announced last July to A$7.2 billion over four years.
The 7.7 gigawatt-hours in home installations between January and May exceeded uptake in the previous six years combined, SunWiz data showed, benefiting battery makers including Tesla TSLA.O, BYD 002594.SZ, Sungrow 300274.SZ and Fox ESS.
Future
“Lightweight” regulations reduced installation costs to a third of U.S. levels, helping one in three Australian homes adopt rooftop solar – the highest penetration in the world, according to a report by the CHARGED initiative.
Now, batteries are driving rooftop solar installations even higher, with SunWiz forecasting 2026 additions to surpass a 2021 peak and surge 41% to a record 4 GW – equivalent to more than two-thirds of the country’s large renewable additions in 2025.
“It’s a sign of what the future can look like. The solution we need most is already above people’s heads, on their roofs,” said SunWiz Managing Director Warwick Johnston.
Australia’s coal-fired output, its main power source, has declined for 10 straight months amid the solar resurgence, according to monthly National Electricity Market data through June from the OpenElectricity platform.
Lifestyle choice
Stored power is increasingly meeting evening demand and reducing the case for some new transmission lines, said Commonwealth Bank of Australia energy economist John Oh. Australia’s energy market operator expects pooled home batteries to eliminate A$5 billion in grid-scale battery investments.
“Distributed energy driven by batteries is a great alternative to circumvent delays in grid transmission buildout, and this can be replicated across the Asia-Pacific,” said Climate Energy Finance Director Tim Buckley.
Higher evening supply from home batteries to the grid is also helping lower wholesale prices, said Brian Spak, general manager of advocacy and policy at Energy Consumers Australia (ECA).
“Even people who don’t have batteries receive benefits from their neighbours taking up the program,” he said.
Still, nearly half of Australian households cannot access solar or batteries because they rent, live in apartments or earn less than A$50,000 a year, according to ECA.
“Seeing all the houses around you with solar panels, but not having access to solar panels on yours is a bit annoying,” said Dale Best, a 25-year-old engineer who rents a house with three others in southern Sydney.
But for homes with solar, storage is giving occupants more control over costs as they choose when to use and export power instead of paying rigid retail tariffs, said Geoff Eldridge, principal adviser at energy consultancy Global Power Energy.
“The battery is not the revolution by itself. The revolution is that electricity is moving into everyday household decisions.” —Reuters

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New online map shows Germany's renewable energy feed-in capacity across distribution grids – pv magazine Global

Fifty-three photovoltaic systems with a combined capacity of 638 kW feed into the distribution grid operated by Max Peissker in Kaulsdorf, Thuringia, while 575,136 PV systems with a combined capacity of around 13.5 GW feed into the Bayernwerk Netz grid. The figures come from a new, freely accessible online map published by the evu+ initiative, part of the Edna Federal Association for Energy Market & Communication.
Updated every six months, the map shows the number and capacity of generation plants and storage systems connected to the distribution grids of Germany’s 871 grid operators. Battery storage systems are also included. Users can analyze the data by grid operator, federal state, generation technology and other criteria. The map does not, however, show available grid capacity.
Martin Käßler, who works in communications and marketing at edna member Fraunhofer IOSB-AST in Ilmenau, created the map with AI assistance, using data from the Core Energy Market Data Register (Marktstammdatenregister).
In July, the Federal Network Agency (Bundesnetzagentur) published a map showing supply quality across Germany’s distribution grids. It uses different colors to indicate how quickly and comprehensively grid operators are implementing the energy transition and the extent to which they are using digital solutions.
“The frequently voiced criticism that Germany has too many grid operators misses the mark,” said Richard Plum, managing director of the edna Federal Association for Energy Market & Communication. “Our new map impressively demonstrates that small and medium-sized grid operators, in particular, make an indispensable contribution to electricity supply and security of supply.”
According to Plum, these operators are also key drivers of the energy transition, as electricity generation within their grids relies almost entirely on renewable energy sources.
The association rejects criticism that Germany’s distribution grid landscape is too fragmented. It points to other European countries for comparison. Denmark has around 55 distribution grid operators and Finland 75, giving both countries a grid operator density relative to population size similar to Germany’s.
Germany has around 98,000 inhabitants per distribution grid operator. By comparison, Austria has around 75,000 inhabitants per operator, with 120 distribution grid operators in total, while Switzerland has around 15,000 inhabitants per operator and approximately 600 operators.
The Edna Bundesverband Energiemarkt & Kommunikation e.V. focuses on market communication processes, digitalization and IT standardization in the energy sector. Its members include municipal utilities, grid operators and energy suppliers, as well as software manufacturers and IT service providers serving the energy industry.

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Researchers in Australia found stainless steel can recover 93% of the silver from old solar panels – yahoo.com

Researchers in Australia found stainless steel can recover 93% of the silver from old solar panels  yahoo.com
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VSB advances solar project at thyssenkrupp packaging steel plant – Yieh Corp.








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Fulham Solar & Battery Project Reaches Key Milestone with Solar Array Completion – News and Statistics – IndexBox

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Octopus Australia has wrapped up the deployment of photovoltaic panels at its Fulham Solar & Battery development in Victoria, and the focus now moves to building the site’s DC-linked battery energy storage system (BESS). The firm announced through LinkedIn that the last solar panel was fitted in late June, taking the total count to 151,020 units with an output rating of 80MW. Octopus Australia described this achievement as a notable advance as the project transitions from building phase toward operational readiness.
The 64MW/128MWh BESS component is slated to arrive at the location during the early part of the latter half of the year, the company noted, representing the subsequent phase of delivery for the Gippsland venture. Fulham secured financial closure and broke ground in April 2025, supported by the Victorian government’s second Renewable Energy Target auction (VRET2). The undertaking carries a valuation exceeding AU$300 million (US$185 million), with funding from Rest, the Clean Energy Finance Corporation (CEFC), and Westpac Private Bank clients via Octopus-managed funds.
The facility will incorporate a 64MW/128MWh DC-coupled BESS provided by Wartsila. GRS, a subsidiary of Gransolar Group, serves as the engineering, procurement, and construction (EPC) contractor. Fulham is scheduled to commence operations in 2027. Under a DC-coupled setup, solar output feeds directly into the battery system through DC/DC converters before being transformed into alternating current for grid supply. This method cuts conversion losses relative to AC-coupled arrangements and enables more effective charging from the adjacent solar field.
Fulham marked Wartsila’s debut DC-coupled hybrid initiative in Australia, undertaken with Octopus Australia. The collaboration has since expanded significantly, with both entities partnering again on the larger 300MW Blind Creek Solar Farm and Battery in New South Wales, a 243MW/486MWh project that achieved financial close in November 2025 with a AU$900 million investment.
In the current month, Octopus Australia selected Habitat Energy to manage optimization for both Fulham and Blind Creek, representing a combined 380MW of solar capacity and 307MW/614MWh of storage. Habitat will coordinate output across the two sites using its predictive and trading tools, and has developed digital replicas of each plant to facilitate pre-commissioning testing.
Sam Reynolds, chief executive of Octopus Australia, stated at that juncture that the firm’s approach involves constructing portfolios where solar and storage function as an integrated unit, delivering dispatchable power akin to conventional coal generation. DC coupling is gaining traction in the Australian sector. Neha Sinha, product manager for energy storage systems at Wartsila Energy Storage, informed ESN Premium that pairing with batteries is increasingly vital for solar developers amid rising curtailment challenges and coal plant shutdowns. She emphasized that co-location with storage is necessary to fully leverage system potential and meet market requirements.
Octopus Australia’s wider project pipeline extends past Fulham and Blind Creek. The company reports its total portfolio spanning wind, solar, and storage at over AU$16 billion, and in February 2026, it purchased the proposed 1.2GW/4.8GWh Hanworth BESS in New South Wales.
Interactive table based on the Store Companies dataset for this report.
This report provides a comprehensive view of the solar cells and light-emitting diodes industry in Australia, tracking demand, supply, and trade flows across the national value chain. It explains how demand across key channels and end-use segments shapes consumption patterns, while also mapping the role of input availability, production efficiency, and regulatory standards on supply.
Beyond headline metrics, the study benchmarks prices, margins, and trade routes so you can see where value is created and how it moves between domestic suppliers and international partners. The analysis is designed to support strategic planning, market entry, portfolio prioritization, and risk management in the solar cells and light-emitting diodes landscape in Australia.
The report combines market sizing with trade intelligence and price analytics for Australia. It covers both historical performance and the forward outlook to 2035, allowing you to compare cycles, structural shifts, and policy impacts.
This report provides a consistent view of market size, trade balance, prices, and per-capita indicators for Australia. The profile highlights demand structure and trade position, enabling benchmarking against regional and global peers.
The analysis is built on a multi-source framework that combines official statistics, trade records, company disclosures, and expert validation. Data are standardized, reconciled, and cross-checked to ensure consistency across time series.
All data are normalized to a common product definition and mapped to a consistent set of codes. This ensures that comparisons across time are aligned and actionable.
The forecast horizon extends to 2035 and is based on a structured model that links solar cells and light-emitting diodes demand and supply to macroeconomic indicators, trade patterns, and sector-specific drivers. The model captures both cyclical and structural factors and reflects known policy and technology shifts in Australia.
Each projection is built from national historical patterns and the broader regional context, allowing the report to show where growth is concentrated and where risks are elevated.
Prices are analyzed in detail, including export and import unit values, regional spreads, and changes in trade costs. The report highlights how seasonality, freight rates, exchange rates, and supply disruptions influence pricing and margins.
Key producers, exporters, and distributors are profiled with a focus on their operational scale, geographic footprint, product mix, and market positioning. This helps identify competitive pressure points, partnership opportunities, and routes to differentiation.
This report is designed for manufacturers, distributors, importers, wholesalers, investors, and advisors who need a clear, data-driven picture of solar cells and light-emitting diodes dynamics in Australia.
The market size aggregates consumption and trade data, presented in both value and volume terms.
The projections combine historical trends with macroeconomic indicators, trade dynamics, and sector-specific drivers.
Yes, it includes export and import unit values, regional spreads, and a pricing outlook to 2035.
The report benchmarks market size, trade balance, prices, and per-capita indicators for Australia.
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Australia's only solar panel manufacturer
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MNRE Approves INR 258.83 Crore HRD Programme To Strengthen India’s Renewable Energy Workforce – SolarQuarter

MNRE Approves INR 258.83 Crore HRD Programme To Strengthen India’s Renewable Energy Workforce  SolarQuarter
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SOKOYO Advances Global Solar Street Lighting Capabilities – The Manila Times

BEIJING, CHINA – Media OutReach Newswire – 12 August 2026 – SOKOYO, a top manufacturer of solar street lights, has installed 252 sets of lighting units in QatarEnergy's solar power project in Ras Laffan and Masaieed in Qatar.

Installation of SOKOYO's split solar street lights for the project being built by Samsung C&T Corp. was completed in July. The arrangement of solar panels was customized at the customer's request for ease of maintenance.

SOKOYO provided us with a specially customized solution for our power station,” said Ms. Kathy, senior procurement manager for Samsung. The entire solar street lighting system consistently met our expectations for brightness, battery life and overall reliability.”

SOKOYO, founded in 2008, has manufactured more than 1 million lighting units installed in a wide range of settings across SoutheastAsia, Africa, the Middle East and Central Asia.

The company manufactures its own LED modules, solar panels, batteries, light housings and light poles. They have third-party certification for European Union and other safety and reliability standards, which qualifies them for export to global markets.

SOKOYO is regularly appointed to bodies that establish national and industry standards.

SOKOYO's product line includes all-in-one solar street lights, all-in-two solar street lights and split-type solar street lights. They can be controlled remotely with IoT technology to improve safety and efficiency. Using solar power makes them immune to disruptions in supplies of oil and gas.

As the industry evolves to focus on system-level R&D,” SOKOYO is reducing customer costs by enhancing reliability and resistance to heat and cold. To improve efficiency, it is developing smart lighting and IoT applications. It is promoting modular production, intelligent manufacturing and standardized process management.

The research team has seven engineers, some with more than two decades of industry experience. They develop technology for a wide range of environments and customer needs.

SOKOYO has experience in markets including Thailand, thePhilippines, Pakistan, Saudi Arabia and Nigeria. It has developed technology to cope with heat, humidity, sandstorms and low light during extended rains, a challenge in central Africa and other areas.

In Uganda, SOKOYO supplied 1,000 light sets to help improve safety on a busy expressway between the capital, Kampala, and the eastern industrial center of Jinja. They provide the first nighttime lighting on a 22-kilometer section of road crowded with trucks, buses and motorcycles.

In Yemen and the United Arab Emirates, SOKOYO lights use LED modules developed to cope with heat, sun and sand.

The company supplied more than 2,000 light units to Saudi Arabia's planned high-tech city of NEOM as part of the Saudi 2030 Vision plan.

Customers can use SOKOYO's test facilities to try out different light configurations. Lights can be tested on roads of up to four lanes in an1,100-square-meter darkroom. Designers and urban planners can ensure light is distributed effectively, eliminating dark areas on the road and improving safety.

Batteries are tested to confirm they resist crushing, heat and cold, vibration, overcharging or being dropped. LED modules are drenched in salt spray for up to 72 hours to make sure they resist corrosion.

SOKOYO has been chosen for bodies that formulated eight national and industry standards including the General Technical Specification for Solar Photovoltaic Lighting Devices” in 2025 with definitions and standards for split-type and integrated solar devices.

SOKOYO products have third-party certification that they meet standards of the International Electrotechnical Commission (IEC) and other bodies.Its batteries meet the requirements of the CB scheme under the IEC, recognized in more than 50 countries. Tests confirm they withstand overcharging, high temperature, vibration, impact and short circuit.

The company's solar panels received IEC certification that they meet standards for electric shock protection, temperature changes, damp, heat, humidity, hail impact and other factors.

SOKOYO participates in efforts to improve the industry's reputation by promoting zero false labeling” and reliable products that refuse to cut corners.

SOKOYO pays attention to the environment. Its products are designed to minimize light pollution and limit disruption for wildlife, stargazers and the public.

Hashtag: #SOKOYO
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India’s solar power cuts coal use in the day, but evening demand keeps fossil fuel running – Down To Earth

India’s solar power cuts coal use in the day, but evening demand keeps fossil fuel running  Down To Earth
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From Consumer to Competitor: How China Views Bharat’s Photovoltaic Rise – HinduPost

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“From Consumer to Competitor: How China Views Bharat’s Photovoltaic Rise”, ORF, Jun 01, 2026.
“In the past few days, the Chinese internet has been abuzz with news of India ‘stealing’ businesses from China, this time in the photovoltaic (PV) space. India’s photovoltaic module production capacity has “skyrocketed” from less than 10 GW in 2018 to 172 GW in 2026 (almost on par with global annual installation capacity), registering a 17-fold increase over eight years. Meanwhile, in China, leading photovoltaic companies have been reporting record-breaking losses totalling tens of billions of yuan since the fourth quarter of 2023, falling into the deepest quagmire of losses in history.
In 2025, 11 of the 15 listed Chinese PV companies reported losses totalling around 50 billion yuan. The five leading companies—TCL Zhonghuan, Jinko Solar, Longi Green Energy, JA Solar, and Trina Solar—reported losses exceeding 28 billion yuan. At this time, news of India’s transformation from a net importer in the 2000s to the “world’s second-largest manufacturer of photovoltaic modules and mobile phones” attracted significant public attention in China, and the contrasting saga (Indian boom, Chinese bust) became a trending topic on Chinese social media. In Chinese public opinion, this dramatic shift in fortunes was directly linked to alleged technology transfer from China, and Chinese companies were criticised bitterly for “aiding the enemy”.
India’s photovoltaic module production capacity has “skyrocketed” from less than 10 GW in 2018 to 172 GW in 2026 (almost on par with global annual installation capacity), registering a 17-fold increase over eight years.
Chinese photovoltaic industry insiders fondly remember those days when the relationship between Chinese and Indian photovoltaic companies was relatively simple: China produced, and India consumed. From 2000 to 2015, China’s cumulative investment in India was only US$ 1.24 billion, accounting for less than 0.5 percent of total global investment in India. For China, India was merely a downstream buyer of Chinese products. However, according to Chinese assessments, things began to change in recent years when India launched its ‘Make in India’ initiative along with supporting measures: i) the Production-Linked Incentive (PLI) scheme, which encouraged companies to set up factories in India; ii) the Basic Customs Duty (BCD) system, which imposed tariffs on imported components, thereby pushing companies to produce locally; and iii) the requirement of Approved List of Models and Manufacturers (ALMM) certification for participation in government projects……………….”
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Huf India Commissions 1 MW Rooftop Solar Project in Pune – mvapulse.com

⚡ Quick Read
Automotive component manufacturers in India are increasingly turning to renewable energy to ensure a reliable and cost-effective power supply. As grid tariffs fluctuate, the integration of a rooftop solar project in Pune has become a strategic move for companies looking to maintain continuous production while meeting sustainability mandates. Huf India, a major player in the automotive components sector, has successfully operationalized a 1 MW installation at its facility in Nanekarwadi, Chakan, to mitigate exposure to rising electricity costs.
The project, executed by ZTRIC India, commenced installation in November 2025 and reached commissioning in March 2026. The facility features high-efficiency Renew solar modules with capacities ranging from 580 Wp to 612 Wp, paired with Solis inverters. The system is designed to generate 1.4 million kWh of clean electricity annually, effectively offsetting approximately 1,092 tons of carbon emissions. Financially, Huf India anticipates annual electricity cost savings between ₹10 million (~$104,922) and ₹12 million (~$125,906), providing a robust return on investment for the manufacturing site.
For EPC contractors and solar developers, this project underscores the sustained demand within the Commercial and Industrial (C&I) segment. According to Mercom India’s Q1 2026 Rooftop Solar Market Report, rooftop solar installations accounted for 18% of total solar additions in the first quarter. While the residential segment leads in volume, the industrial and commercial sectors remain critical for EPCs seeking high-value, reliable corporate clients. The successful deployment at Huf India—following similar expansions by firms like TBK India in Shirval—demonstrates that manufacturing clusters in Maharashtra are prime targets for solar integration.
The trend of corporate energy transition is expected to accelerate as more manufacturers seek to decouple from grid dependency. Developers should monitor the upcoming C&I Clean Energy Meet series, with the next event scheduled for August 21, 2026, in Hyderabad, to engage with potential industrial clients. As the India renewable energy sector continues to mature, the focus will shift toward optimizing rooftop space and enhancing system efficiency to drive further cost reductions for the nation’s industrial backbone.
Aditya Pathre is the Founder of MVApulse and covers India’s renewable energy sector, including solar, wind, battery energy storage systems (BESS), green hydrogen, transmission infrastructure, renewable energy policy and competitive bidding. His reporting focuses on project developments, market trends, government policies and energy transition across India.
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Parliamentary Panel Flags Underutilisation of Govt Funds for India’s Renewable Sector – saurenergy.com

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A latest parliamentary report has shed light on the underutilization of funds allocated for various schemes, highlighting a significant gap between the demand of Rs. 45,806.61 crore raised by the Ministry of New and Renewable Energy (MNRE) and the Rs. 32,914.67 crore allocated by the Finance Ministry for carrying out various activities during 2026-27.
Another important aspect highlighted in the parliamentary report is the changing trend in funding for the PM-KUSUM scheme and the commissioning of solar projects using funds allocated under the grid-connected solar power budget.
Under the Solar Park Scheme, around 7 GW of solar power projects are expected to be commissioned in FY 2026-27. The fund requirement for these projects will be met through the budgetary allocation under the budget head for grid-connected solar power.
The report also highlighted an interesting finding regarding the Production Linked Incentive (PLI) Scheme for High Efficiency Solar PV Modules. The scheme has not set year-wise physical targets. Since the disbursement of incentives is scheduled to begin one year after commissioning, no funds have been allocated or disbursed under the scheme so far.
The report noted there is no budgetary allocation for the PLI Scheme for High Efficiency Solar PV Modules in FY 2026-27 at present, as no fund requirement is expected during the first half of FY 2026-27. The budget allocation for the PLI Scheme for High Efficiency Solar PV Modules for 2026-27 will be considered at the Revised Estimates (RE) stage, depending on the progress of projects under the scheme and the resulting estimate of fund requirements during the second half of FY 2026-27.
According to the Ministry, wind power projects are being set up by private developers based on the techno-economic viability of individual projects. The government is not providing any direct central financial assistance for installing new wind power projects.
When asked to furnish details of the major activities and projects proposed to be undertaken during 2026-27, the ministry noted, “The major activities/projects proposed to be undertaken during 2026-27 includes issuance of bids for wind-solar hybrid power, firm and dispatchable renewable energy in which generally wind power is a component, and vanilla wind power projects, tendering of offshore wind energy capacity off the coast of Tamil Nadu supported by a Viability Gap Funding (VGF) scheme.”
The funds allocated for the wind energy programme are being utilized to meet liabilities under the Wind Generation Based Incentive (GBI) scheme, which remained operational until March 2017. Consequently, there are no annual physical targets for wind capacity addition linked to the scheme, nor is there a corresponding budgetary allocation. Currently, there is no Scheme for Onshore wind power. The committee viewed collaboration with global Offshore wind developers to enable the Ministry to understand the opportunities and challenges of the offshore wind market.    
The report noted that the Green Energy Corridor (GEC) scheme received a budgetary allocation of around Rs. 600 crore for 2026-27. However, the scheme has faced significant delays in implementation.
The Intra-State Transmission System (InSTS) GEC-I scheme has been a primary reason for the delay, with several factors contributing to the slow progress. These include Right of Way (RoW) issues, delays in issuing tenders due to delays in substation land acquisition, delays in awarding works because of low bidder participation in various projects, repeated re-tendering, court cases, forest clearances, and Great Indian Bustard (GIB)-related clearances, among others.
The report further mentioned, “The Intra-State Transmission System (InSTS) GEC-II scheme has been delayed due to various reasons such as non-participation during tendering process, re-tendering, limited bidder participation, cancellation of tenders, regulatory issues etc.”
In the report, MNRE noted that the government has not had an operational programme or scheme for off-grid solar power since April 2021. However, MNRE issued a sanction on August 3, 2022, to solarize 115 Forward Defense Locations (FDLs) through off-grid solar plants with battery backup at the Jammu & Kashmir Frontier of the Border Security Force (BSF). The project has a capacity of 1.212 MWp and Central Financial Assistance (CFA) of Rs. 16.73 crore.
For disbursement of pending funds in the financial year 2026-27, a provision clears upcoming pending liabilities. The committee said that, in a letter sent to the Department of Expenditure (DoE) on January 28, 2026, it sought approximately Rs. 37.84 crore in funds for the financial year 2026-27 to clear pending liabilities under the scheme. 
Under the scheme, off-grid systems, including Solar Home Lighting Systems and Solar Mini Grids, are provided to tribal and Particularly Vulnerable Tribal Group (PVTG) households, multi-purpose centres, and public institutions in Tribal and PVTG areas where grid-connected electrification is not techno-economically feasible. Currently, the Budget Estimate (BE) under DA JGUA for FY 2026-27 is Rs. 35 crore.
The committee report found that funds allocated under the PM Surya Ghar scheme were underutilized and that the target was not achieved within the stipulated timeframe, with challenges arising from coordination issues with DISCOMs.
The committee found that the initial phase of implementation faced several challenges involving DISCOMs, including delays in inspections and commissioning, mandatory physical visits for load or name changes, delays in net-metering activation, meter shortages, limited vendor availability, issues related to Domestic Content Requirement (DCR) panels, difficulties in accessing bank financing, and slow subsidy disbursement.
The report also highlighted higher installation costs in some states due to complex terrain and geographical conditions. Less reliable grid connectivity in remote areas may also hamper the proper functioning of rooftop solar systems. The Ministry stated that, to overcome these hurdles, it strengthened the implementation framework by empanelling vendors, standardizing processes related to bank financing, and integrating verification mechanisms at the DISCOM level. According to the Ministry, these measures have significantly improved the timeline for subsidy disbursement.
Following the corrective measures, the scheme has generated strong consumer interest, with a substantial pipeline of applications at various stages of approval and installation. The scheme has also shown significant acceleration. Monthly installations increased from about 15,000 in March 2024 to about 61,000 in June 2024, crossed 1 lakh per month by March 2025, and reached about 2 lakh in January 2026. This indicates a rapid scale-up and growing consumer adoption.
The Ministry stated, “Major activities/projects proposed to be undertaken are completion of phase-I of the GEC, completion of tendering process and award of works for InSTS and ISTS in GEC-II. Further, it is anticipated that the next phase may be rolled out during the year 2026-27.” It further stated, “In Green Energy Corridor Phase 3, we are proposing to evacuate 135 gigawatts of renewable energy. We work as catalysts, we provide roughly 33 per cent funding and to that extent, we are likely to seek around 54,000 crores for this.”
The underutilization of funds under the scheme remains a recurring theme in the committee report. Under PM-KUSUM Scheme Component-A, banks’ hesitation to utilize funds was identified as the primary reason for delays in implementation. The government is now attempting to overcome this challenge through persistent financial support to farmers, enabling smoother progress under this component.
Some of the other challenges include delays in state-level tendering, delays in issuing Power Purchase Agreements (PPAs) and Notices to Proceed (NTPs), slow implementation, and the availability of the state share.
Under Component-B, delays were attributed to the lengthy centralized tendering process and the limited availability of vendors at the start of the scheme. Furthermore, reductions in states’ allocated budgets for subsidies further slowed progress and resulted in fewer installations than expected.
To address these challenges, the government revised the guidelines in January 2024 to allow state-level tenders for procuring standalone solar pumps and revised the eligibility criteria to include system integrators as vendors. This broadened the pool of empanelled vendors and helped accelerate installations.
Under Component-C, the committee observed a shift in the Feeder Level Solarisation scheme. The new feeder solarization guidelines introduced in December 2022 shifted the focus toward solarization of agricultural feeders rather than individual pumps.
The model can be implemented by DISCOMs through either CAPEX or RESCO models, without requiring any financial contribution from farmers.
Lauding the success of the scheme, the committee noted that there is significant demand from states over and above the targeted capacities under different components of the scheme.
It said,“The gestation period for such projects is 18 months from the date of the issuance of Letter of Award (LoA). Therefore, most of the capacities are expected to be commissioned in the FY 2026-27.” Concerning the status of PM-KUSUM 2.0, the Ministry stated that the draft Expenditure Finance Committee (EFC) note for PM-KUSUM 2.0 has been prepared and is under circulation for inter-ministerial consultation.
Under the Solar Park Scheme, around 7 GW of solar power projects are expected to be commissioned in FY 2026-27. The fund requirement will be met through the budgetary allocation under the budget head for grid-connected solar power. Under the scheme, a net aggregate capacity of around 8.2 GW has been sanctioned to 11 different CPSUs/Government organizations. Of this, around 5.7 GW had been commissioned as of January 31, 2026, while the remaining capacity is at various stages of commissioning.
Under CPSU Scheme Phase-II, there is no year-wise physical target. In FY 2026-27, around 1.1 GW of solar power projects are expected to be commissioned under CPSU Scheme Phase-II. The fund requirement will be met from the budgetary allocation under the budget head for grid-connected solar power, which caters to CPSU Scheme Phase-II as well as a few other schemes.
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Gabriel Bosslet: The problem with going solar in Indiana – dailyjournal.net

Gabriel Bosslet: The problem with going solar in Indiana  dailyjournal.net
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ORLEN Group commissions 42.2 MW solar farm in Lithuania – Solarbytes

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The ORLEN Group, a European renewable energy firm, has brought a 42.2 MW solar farm online at its Mažeikiai refinery grounds in Lithuania. The project cost nearly €35 million (~ $40.36 million), including €2.5 million (~$ 2.88 million) support from the European Union’s Modernisation Fund. It features nearly 68,000 bifacial photovoltaic modules, each rated at 620 W and spans around 60 hectares. The modules capture sunlight on both sides improving output even in lower-light conditions. The Polish contractor Electrum has constructed the facility. It is expected to generate 45 GWh of electricity each year. This output is expected to meet 7% of ORLEN Lietuva’s energy needs and cut electricity costs by approximately €4 million annually.
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Building a platform for high-quality development – China Daily

On the edge of the Kubuqi Desert in Hangjin Banner, Ordos, the Inner Mongolia autonomous region, rows of deep-blue photovoltaic panels stand on what was once barren saline-alkali land. Beneath the panels, instead of desolation, clusters of salt-tolerant grasses sway in the breeze. Three years of research by a team including our Inner Mongolia University of Technology in collaboration with local enterprises has helped develop this “photovoltaics + ecological restoration” technology.
Each solar panel captures sunlight above to generate green energy, while improving soil conditions and restoring vegetation below. This example of high-quality development in Inner Mongolia shows innovation is not an abstract concept, but a tangible force rooted in the land, transforming capabilities and improving lives.
As 2027 marks the 80th anniversary of the founding of Inner Mongolia autonomous region, its administration must seize the opportunities outlined in the 15th Five-Year Plan (2026-30) and help the region drive high-quality development through the effective transformation of high-quality innovation achievements.
Inner Mongolia must focus on leveraging its resource base and industrial foundation, and pursuing a dual approach driven by both demand and problem-solving to cultivate innovation achievements aligned with regional industrial development.
First, guided by the development framework of competitive, potential and forward-looking industries, priority should be given to upgrading traditional industries toward high-end, intelligent and green development.
In the energy sector, Inner Mongolia ranks first in China in terms of installed renewable capacity. By the end of 2025, the region’s installed capacity of wind power had reached 100.33 gigawatts, its photovoltaic capacity had exceeded 40 GW, and its cumulative power generation from new energy sources had reached 250 billion kilowatt-hours‌.
To address the intermittency of wind power and grid integration challenges, our research team is developing integrated “wind-solar-storage” smart dispatch systems. Building on China’s first generation grid-load-storage integrated project in Ulaanqab — the world’s largest demonstration project for an integrated solution involving power supply, power grid, power load, and energy storage — the local consumption rate of green electricity has exceeded 90 percent.
In energy storage, technological pathways such as vanadium flow batteries, compressed air storage and hydrogen storage are being developed. Our university is working on an empirical platform coupling that integrates wind, solar, hydrogen and storage to tackle long-duration storage challenges.
Green hydrogen production, in particular, represents a frontier technology that converts renewable electricity into hydrogen for large-scale storage and transport across time and space. It is key to addressing renewable energy utilization and achieving deep decarbonization in industry. Inner Mongolia is actively advancing green hydrogen, which can provide zero-carbon feedstock for coal, steel and transport sectors, while also opening new channels for “west-to-east hydrogen transmission”.
In the dairy sector, extending the industry chain and upgrading the value chain are crucial for increasing incomes among farmers and herders. Moving beyond the traditional model of selling raw milk, advances in deep processing technologies have enabled the production of high-value products such as infant formula, milk fat, bioactive peptides and lactoferrin, raising the value of raw milk by three to five times per metric ton.
Leading local companies such as Yili Group and Mengniu Dairy have established national innovation centers, achieving domestic production of lactoferrin and breaking foreign monopolies. This not only means safer, higher-quality dairy products for consumers but also opens up a market worth hundreds of billions of yuan for investors.
In the rare earth sector, the focus is shifting from exporting raw materials to producing high-end materials and components, with breakthroughs in applications such as permanent magnets, catalysis, hydrogen storage and polishing. Plans are underway to build a national laboratory for rare earth new materials, driving the industry from a trillion-yuan scale toward even greater heights.
Second, efforts should center on integrating green development with digital computing power to build a distinctive portfolio of innovation achievements. Technologies combining desertification control with renewable energy development — such as the photovoltaic arrays that reduce wind speed and evaporation while supporting vegetation underneath in Alshaa League of Inner Mongolia — are being advanced.
In the area of intelligent grassland ecological monitoring, high-resolution satellite and unmanned aerial vehicle remote sensing are being used to build large-scale dynamic models of grassland biomass and carbon sinks, enabling precise management of livestock-grass balance.
Third, the region is focusing on future industries. Leveraging its exceptional advantages in smart computing — including ultra-low electricity costs, a cool climate and policy support from a national project — the Horinger New Area in Inner Mongolia’s capital of Hohhot has built the country’s largest smart computing hub cluster, with an installed computing capacity exceeding 12,000 petaflops, surpassing that in developed cities such as Shenzhen in Guangdong province and Hangzhou in Zhejiang province. Major industry players including Huawei, Alibaba, Baidu Inc, China Mobile and China Telecom have already established operations in the region.
Rather than trailing behind developed regions, Inner Mongolia is capitalizing on its “computing haven” effect to position itself as a cost-effective powerhouse for national AI training and inference.
Focusing on areas such as computing networks, the low-altitude economy, artificial intelligence and intelligent robotics, Inner Mongolia is prioritizing breakthroughs in frontier technologies including large-model training and inference, trusted data spaces, and drone-based herding and inspection. For example, the Inner Mongolia University of Technology has partnered with Huawei to establish an industry-education integration base, developing a large-model training platform that supports both Mongolian and Chinese languages.
In Xilingol League, a pilot project for automated drone herding has been launched, where a single drone can manage up to 5,000 sheep, cutting labor costs by 80 percent.
Translating research outcomes into real-world applications is a systematic endeavor. Inner Mongolia must therefore build a three-dimensional transformation system that integrates platform support, institutional safeguards and ecosystem optimization. Such a system is essential to remove bottlenecks in the commercialization process, unlock the full potential of all transformation factors and decisively address the core issue.
It is necessary to establish a number of specialized, open, shared and fully functional pilot-scale testing bases and public service platforms to provide convenient, efficient and cost-effective services for all types of innovation entities.
In industrial clusters such as Hohhot, Baotou, Ordos and Ulaanqab, efforts should be made to accelerate the development of specialized pilot-scale testing bases in key sectors such as new energy and artificial intelligence, ensuring comprehensive pilot-scale support across major industries. At the same time, the industrial innovation center model should be expanded, while accelerating the development of new technology commercialization platforms, thereby creating a new benchmark for an integrated innovation platform ecosystem.
Leveraging the “Mengkeju” platform as a key innovation-driven platform, Inner Mongolia is building an integrated platform for industry-university-research collaboration and the promotion and commercialization of sci-tech achievements, facilitating deeper connections between innovation and capital, as well as between technology and the market.
The platform, a flagship initiative under Inner Mongolia’s innovation-driven development strategy, has established a comprehensive innovation network integrating scientific research and development, capital operation, project incubation, technology commercialization and intellectual property protection.
Since its launch in 2023, the platform, with more than 20,000 registered users, has recorded over 1.48 million website visits. It has hosted 196 technology release and matchmaking events, published 1,287 technology achievements and market demands, facilitated technology commercialization transactions worth 923 million yuan ($136.28 million), and helped science and technology enterprises secure nearly 7.55 billion yuan in financing.
The platform is now further strengthening its role as a hub for industry-university-research collaboration and technology commercialization by promoting closer integration between research outcomes and investment, and between technological innovation and market demand.
Efforts are underway to cultivate a group of professional technology transfer organizations and dedicated commercialization teams to improve the success rate of technology transfer. Meanwhile, the region is implementing post-transaction subsidies for technology trading, pioneering innovative cooperation models such as equity investment through computing power and data dividend sharing, establishing a risk compensation fund, and encouraging financial institutions to provide dedicated credit support for pilot-scale testing and artificial intelligence research and development projects.
Using capital as the key link, the local authorities must support the establishment of a number of independently operated, market-oriented new R&D institutions to break down institutional barriers among innovation actors and promote the evolution of industry-university-research collaboration from loose cooperation to deep integration.
Focusing on the region’s strategic sectors such as new energy, new materials, and modern agriculture and animal husbandry, they should jointly develop technology road maps to create a seamless innovation chain spanning technological breakthroughs, commercialization of research outcomes and industrial application.
The ultimate goal of high-quality commercialization of sci-tech achievements is to foster new high-quality productive forces. This does not mean starting from scratch or abandoning existing productive capacity. Rather, it requires adhering to the principle of putting industry first, advancing development in light of local conditions and transforming resource endowments into innovation strengths while upgrading traditional advantages into systemic competitive advantages.
It is a must to promote the adoption of new commercialization-driven technologies in traditional industries, replacing the fragmented approach of isolated technological upgrades with integrated transformation. In leading sectors such as energy, chemicals and metallurgy, the local authorities must select key industrial parks and flagship enterprises to develop integrated application scenarios that combine data-driven operations, intelligent control and green manufacturing processes.
Meanwhile, they should also accelerate the extension of industrial value chains toward higher value-added segments. It is also necessary to establish a fund to support innovation in the Product-as-a-Service model, a business model where a service is provided in an area traditionally served via the purchase of a product, encouraging traditional enterprises to evolve from pure product suppliers into providers of integrated solutions.
The ferroalloy industry in Ulaanqab offers a compelling example. By deploying the world’s first large-capacity fully enclosed direct current submerged arc furnace, enterprises have reduced electricity consumption by 15 percent and coke consumption by 10 percent, while enabling more than 30 operators to oversee the entire production process with precision from a centralized intelligent control center.
At the same time, these enterprises are transforming from sellers of ferroalloy products into providers of comprehensive solutions that combine smelting technology packages with remote operation and maintenance services.
Another example is the 1,4-butanediol (BDO) industry in Wuhai. Supported by a technology innovation center, local enterprises have shifted from simply marketing BDO monomers to supplying biodegradable materials together with customized formulation services. They have established a complete industry chain spanning coal, electricity, BDO production and biodegradable plastics, significantly enhancing the cross-industry value creation.
Leveraging sci-tech innovation and the commercialization of research outcomes strengthens the role of the Hohhot-Baotou-Ordos-Ulaanqab urban cluster as the region’s innovation hub in strategic sectors while making an extraordinary effort to cultivate a number of emerging industrial clusters.
At the same time, the local authorities must explore an Inner Mongolia-specific development pathway that links sci-tech achievements, start-up enterprises and industrial clusters into an integrated cultivation chain. The authorities should also facilitate the free flow and optimal allocation of innovation resources, and foster a new pattern of strategic emerging industry development characterized by coordinated cross-region planning, differentiated regional strengths and synergistic collaboration.
The author is the vice-president of the Inner Mongolia University of Technology.
The views don’t necessarily reflect those of China Daily.
If you have a specific expertise, or would like to share your thought about our stories, then send us your writings at opinion@chinadaily.com.cn, and comment@chinadaily.com.cn.
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MH Energy Strengthens Global Solar Innovation as a Leading Custom Ground Mounted Solar Panel Kits Manufacturer – EIN News

MH Energy Strengthens Global Solar Innovation as a Leading Custom Ground Mounted Solar Panel Kits Manufacturer  EIN News
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India’s round-the-clock renewables tender attracts lowest bid of $0.055/kWh – pv-magazine.com

The Solar Energy Corp. of India (SECI) has discovered a lowest tariff of INR 5.25 ($0.055)/kWh in its tender to procure 1 GW of firm and dispatchable renewable energy (FDRE) on a round-the-clock (RTC) basis from ISTS-connected renewable energy projects.
Kengeri Prime Solar (180 MW), Resolven Four Energy (150 MW), Hexa Climate Solutions (150 MW), Hero Solar Energy (120 MW), EMIF II Holding (100 MW), and Purvah Green Power (70 MW) quoted the lowest tariff of INR 5.25/kWh. SECI awarded the remaining capacity to Juniper Green at INR 5.26/kWh.
The tender requires developers to set up renewable energy projects backed by energy storage systems (ESS) on a build-own-operate basis and supply firm power under 25-year power purchase agreements (PPAs) with SECI. SECI will sell the procured power to buying entities across India.
The procurement is based on contracted power capacity (MW). Renewable power developers (RPDs) must supply electricity on a round-the-clock basis while maintaining a minimum demand fulfillment ratio (DFR) of 90% during peak hours and 80% during off-peak hours. The off-peak requirement may be relaxed to 70% for any two calendar months between July and September. The annual DFR must remain at 90%.
These requirements are intended to ensure that renewable energy projects mimic the operational profile of conventional thermal power plants by delivering firm, round-the-clock power with high availability.
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The new issue of pv magazine Global is out now!
Available in print and digital – get your copy today!
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India’s Solar Capacity Surpasses 164 GW As 2026 Installations Approach 29 GW By July-End – SolarQuarter

India’s Solar Capacity Surpasses 164 GW As 2026 Installations Approach 29 GW By July-End  SolarQuarter
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Rural CT town opposes near 5-megawatt solar array. It targets farmland. – courant.com

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With several large solar arrays already in town, Ellington is balking at Greenskies Clean Energy’s proposal to cover another 21 acres of farmland with panels for a roughly 5-megawatt solar farm.
North Haven-based Greenskies applied in June to the state Siting Council for permission to build, and a vote is expected before the end of November.
Numerous Ellington residents have been complaining on social media that their town along with nearby East Windsor is getting oversaturated with solar farms, all at the expense of attractive rural scenery and active farmland.
In March, even before Greenskies came forward, First Selectman Laurie Burstein led local officials in passing an ordinance opposing any further commercial solar farms of more than 1 megawatt that would significantly and irreversibly damage “prime agricultural land, valuable environmental resources, rural landscapes, and agricultural opportunities upon which the community of Ellington was founded.”
Ellington’s conservation commission agreed that could be the case with the Greenskies plan, and Assistant Town Planner John Colonese recently sent that message in a letter to the Siting Council.
“The commission disapproves of converting working farmland into a large-scale solar photovoltaic electric generating facility and expresses concern that the solar facility may impact water and wildlife resources,” Colonese wrote.
The council is reviewing an extensive application from Greenskies to build on 21 acres of a 75-acre parcel along Schoolhouse Road. The current owner wants to lease the property to Greenskies for 20 years.
Greenskies Clean Energy's proposed Ellington solar array. (Courtesy of Connecticut Siting Council)
The company would install about 11,000 solar panels, and direct the energy produced into the power grid.
“The project as designed will not have adverse effects on quality forested areas, agricultural land,
or wetlands, and the project will not diminish the quality of life of those who live in the vicinity.” Greenskies told the Siting Council in its application.
The General Assembly earlier this year considered bills requiring more local input on Siting Council decisions, but those measures never advanced. During hearings on those bills, lawmakers heard from many disgruntled homeowners.
“In parts of Connecticut, specifically East Windsor/Enfield we have seen massive development of solar farms in what once was pristine, natural farmland, or forest,” Matthew Mazur told lawmakers.
“Over recent years, some roads I drive down are now unrecognizable as it is just a sea of black solar panels, where their were fields of flowers or trees or farmland. There is certainly a time and place for these developments, but not at the expense of natural habitats.”
Dozens of other residents from the region agreed. But others took a different view.
“We are currently working with a solar company to use about 45 acres (in two small parcels) of our 187-acre farm. We do not think that a town should be able to tell us what we can and cannot do with our land. We feel that we are being penalized as farmers,” wrote Kimberly and Ken Shores of Ellington.
“No one else has to defend their right to do whatever they want (within zoning) with the property they have owned and paid taxes on for years,” the couple wrote. “We are getting ready to retire and instead of developing the land and losing it forever, we would like to lease the land for 20 years to a solar company to keep it whole without impact to our neighbors, wildlife, traffic, the school system, etc.”
Burstein said Ellington already has more than 300 acres covered by solar panels. She said the Siting Council should be required to take into account local long-term development plans.
“We spend years working on that, only to have no rules or regulations (when the state allows a solar farm),” she said.
Greenskies already has farmland solar arrays in East Windsor, Orange, Waterford and Durham as well as other Connecticut communities, and is proposing more in Woodbury and Morris.
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Menominee still inching toward energy sovereignty despite grant loss – jsonline.com

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Record-dry April lifts irradiance across Eastern Australia – pv-magazine.com

April 2026 was one of Australia’s driest Aprils in recent years, with a persistent high-pressure pattern and the return of ENSO to neutral conditions combining to suppress cloud cover and lift solar irradiance across much of the continent. According to analysis using the Solcast API, global horizontal irradiance (GHI) tracked above normal in most regions, with New South Wales and Victoria the clear beneficiaries, while cloud and rainfall linked to ex-Tropical Cyclone Maila limited gains in the north.

The dominant weather feature through April was a slow-moving high-pressure system that travelled from the west across southern Australia before stalling in the Tasman Sea. This pattern produced extended periods of clear skies, cool nights, and warm sunny days. Nationally, Bureau of Meteorology reports rainfall totals were 43% below the long-term April average, the lowest since 2018, with every state and territory recording below-average rainfall except the Northern Territory. These conditions coincided with ENSO returning to neutral after La Niña, a phase typically associated with enhanced tropical moisture and cloud across northern and central Australia. The reduction of that moisture influence coincides with a turnaround in fortune for the continent from the cloudier conditions in prior months.
Parts of New South Wales and Victoria stood out as the strongest performers. Mid-month, a cold front brought a brief period of cooler conditions to the southeast, including snow and rainfall. This was followed by a drier air mass and a return to sunnier conditions. Later in the month, a blocking high in the Tasman Sea led to very stable weather across southern Australia, with little day-to-day variation. Inland areas of the southeast experienced prolonged favourable solar conditions, with warm northerly winds and unusually clear weather contributing to a solar surplus of up to 15% above normal.

In contrast, conditions in northern Australia were shaped by the remnants of Tropical Cyclone Maila. The system formed in the Solomon Sea on 2 April and intensified to a Category 5 cyclone by 8 April, affecting more than 119,000 people across Papua New Guinea and the Solomon Islands. By 11 April it had been classified as an ex-tropical cyclone but continued across far north Queensland and the Northern Territory, bringing cloud, heavy rain, and thunderstorms westward. This rainfall contributed to the Northern Territory recording near-average rainfall for the month, in contrast to the widespread dryness elsewhere. The coastal fringe of southern Western Australia and parts South Australia also bucked the trend of the rest of the country, recording below-average irradiance, at around 5% less than normal.
Solcast produces these figures by tracking clouds and aerosols at 1-2km resolution globally, using satellite data and proprietary AI/ML algorithms. This data is used to drive irradiance models, enabling Solcast to calculate irradiance at high resolution, with typical bias of less than 2%, and also cloud-tracking forecasts. This data is used by more than 350 companies managing over 300 GW of solar assets globally.
The views and opinions expressed in this article are the author’s own, and do not necessarily reflect those held by pv magazine.
This content is protected by copyright and may not be reused. If you want to cooperate with us and would like to reuse some of our content, please contact: [email protected].
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The new issue of pv magazine Global is out now!
Available in print and digital – get your copy today!
Entries open in seven categories: Modules, Inverters, BoS, BESS, Manufacturing, Sustainability, Projects.
April 01 – August 31, 2026
Tuesday, August 11, 2026
3:00 pm – 4:00 pm CEST, Berlin, Paris, Madrid
A two-day conference in Austin, Texas, bringing together leaders in US solar manufacturing, equipment specification, and factory execution.
Tuesday, August 18, 2026
7:00 pm – 8:00 pm CEST, Berlin, Paris, Madrid
Tuesday, August 25, 2026
10:00 am – 11:00 am CEST, Berlin, Paris, Madrid
Saudi Arabia is accelerating its clean energy transition—join the SunRise Arabia Clean Energy Conference 2026 in Riyadh to explore how solar PV and energy storage are powering its digital economy.
Thursday, August 27, 2026
5:30 am – 6:30 am CEST, Berlin, Paris, Madrid
pv magazine USA hosts its third multi-day virtual event on advancing U.S. solar and energy storage markets, covering financing, supply chains, and distributed energy’s role in grid resilience.
Thursday, October 7, 2026
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Expanded home electrification rebates offer more ways to save – Piedmont Exedra

Piedmont Exedra (https://piedmontexedra.com/2026/08/expanded-home-electrification-rebates-offer-more-ways-to-save)
City of Piedmont
Solar panels on a Sustainability Award-winning Piedmont home
From a City of Piedmont 8/11/26 press release:
Since 2023, Piedmont’s home electrification rebates have supported 90 gas-to-electric appliance conversions and electrical panel updates. Over the same period, home electrification has gained ground locally. In 2025, permits for heat pump and heat pump water heater installations surpassed their natural gas equivalents for the first time. But natural gas use in Piedmont homes still accounts for around half of community-wide greenhouse gas emissions,  and continued progress is needed to meet the City’s climate goals. 
Updates to the rebate program take what we’ve learned from the first three years and put it to work – expanding the projects we support, improving access to higher rebates, and focusing City funds where they can have the greatest impact. 
Projects eligible for rebates now include solar paired with battery storage, standalone battery storage, gas meter removal, and smart electrical panels:  
Under the new eligibility rules, heat pump heating and cooling rebates are limited to income qualified households. City data showed that these projects were moving forward without a rebate, while rebates appeared to play a greater role in heat pump water heater projects. Redirecting those funds allows the program to support more projects and better target assistance where it can make a difference. 
For residents who already submitted a permit application for a heat pump project that would have qualified under the previous rules, the City is providing a grace period and will accept applications for the standard rebate until October 1.
We’ve also expanded eligibility for higher, “income qualified,” rebate amounts. 
Previously, income-qualified rebates were tied to CARE or FERA eligibility, which applies to only about 2% of Piedmont households. In three years, just one rebate was issued at the income qualified level. Analysis found that these limits were not reaching many households that may still face financial barriers to electrification. 
Now, households earning up to 120% of Area Median Income (roughly $195,000/year for a 4-person household) can qualify for a new “moderate-income” rebate tier. Households that qualify for CARE or FERA will continue to receive the highest rebate amounts. 
Before starting a project, review current rebate amounts and eligibility requirements at  piedmont.ca.gov/Electrification-Rebates. Rebates are first-come, first-served and funding is not guaranteed. 
The Exedra comments section is an essential part of the site. The goal of our comments policy is to help ensure it is a vibrant yet civil space. To participate, we ask that Exedra commenters please provide a first and last name. Please note that comments expressing congratulations or condolences may be published without full names. (View our full Comments Policy.)
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16-acre solar field inches toward passage – Jacksonville Journal-Courier

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First non-industrial zoned solar farms could be coming to Quincy – wfsb.com

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Beyond modules: Why cell manufacturing will shape India’s next solar growth story – pv-magazine.com

India is witnessing a remarkable expansion in solar cell manufacturing. In just a year, ALMM-listed cell manufacturing capacity has increased from around 13 GW to roughly 31 GW across eight revisions. With a substantial pipeline of commissioned, under-construction and announced projects, capacity is expected to cross 100 GW by June 2027.
This is more than a capacity addition. It marks the emergence of a deeper technology and manufacturing base for India’s solar industry. The country has already established significant module manufacturing scale, and the rapid growth of cell manufacturing is now adding the technological depth behind that scale.
The solar cell is the technology-defining component of a module and accounts for roughly 60 per cent of its value. As the industry moves towards higher-efficiency technologies such as Topcon and beyond, cell manufacturing is where technology, process expertise, quality and innovation increasingly converge.
Indian cell manufacturers are investing in precisely these capabilities. The new capacity being created represents investments in advanced technologies, process optimisation, yield improvement, quality systems, skilled manpower and R&D. These investments are building the foundation for a globally competitive Indian solar industry.
A strong domestic cell manufacturing base also gives India greater control over its solar technology roadmap. Manufacturers with domestic cell capabilities can respond faster to changes in cell architecture, efficiency and manufacturing processes, while developing products suited to evolving domestic and international requirements. Over time, this capability can become a significant competitive advantage for Indian companies in global markets.
The expansion of cell manufacturing is the natural next step in India’s successful build-out of module manufacturing. India has demonstrated its ability to create downstream scale. The opportunity now is to deepen that ecosystem by increasing the technology and value addition created within the country.
The significance of this investment is even greater because cell manufacturing is considerably more complex than module assembly. It requires substantially higher capital investment, specialised equipment, sophisticated process capabilities and longer gestation periods before stable commercial yields are achieved. The relatively small number of cell manufacturers compared with module manufacturers reflects these higher barriers to entry and the scale of commitment required.
India’s cell manufacturers are taking on this challenge at scale. They are committing significant capital to build facilities that will form the backbone of India’s solar manufacturing ecosystem for years to come.
Policy initiatives such as the Production Linked Incentive (PLI) Scheme have helped catalyse this investment. As projects move through commissioning and commercial operations, the resulting capacity additions will strengthen domestic manufacturing, deepen technology capabilities and enhance India’s ability to serve its rapidly expanding solar market.
The next phase of this investment cycle will depend on maintaining confidence in India’s manufacturing policy framework. Cell manufacturing investments involve substantial capital and multi-year planning horizons. Companies investing today are building facilities designed to serve India’s solar market well beyond the immediate project cycle. A stable and predictable policy framework is therefore critical to sustaining the investment momentum already underway and encouraging the next wave of domestic cell and upstream manufacturing.
India has already demonstrated its ability to build manufacturing scale, and the rapid expansion of cell manufacturing is now adding greater technological depth to that ecosystem. The growth of ALMM-listed cell capacity from around 13 GW to roughly 31 GW in just a year, with capacity expected to cross 100 GW by June 2027, demonstrates the confidence Indian manufacturers have placed in the country’s solar opportunity.
The next chapter of India’s solar manufacturing story will therefore not be measured only by how many modules the country can produce. It will increasingly be measured by the strength, technology and global competitiveness of the Indian cell manufacturing ecosystem powering those modules.
The views and opinions expressed in this article are the author’s own, and do not necessarily reflect those held by pv magazine.
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The new issue of pv magazine Global is out now!
Available in print and digital – get your copy today!
Entries open in seven categories: Modules, Inverters, BoS, BESS, Manufacturing, Sustainability, Projects.
April 01 – August 31, 2026
Tuesday, August 11, 2026
3:00 pm – 4:00 pm CEST, Berlin, Paris, Madrid
A two-day conference in Austin, Texas, bringing together leaders in US solar manufacturing, equipment specification, and factory execution.
Tuesday, August 18, 2026
7:00 pm – 8:00 pm CEST, Berlin, Paris, Madrid
Tuesday, August 25, 2026
10:00 am – 11:00 am CEST, Berlin, Paris, Madrid
Saudi Arabia is accelerating its clean energy transition—join the SunRise Arabia Clean Energy Conference 2026 in Riyadh to explore how solar PV and energy storage are powering its digital economy.
Thursday, August 27, 2026
5:30 am – 6:30 am CEST, Berlin, Paris, Madrid
pv magazine USA hosts its third multi-day virtual event on advancing U.S. solar and energy storage markets, covering financing, supply chains, and distributed energy’s role in grid resilience.
Thursday, October 7, 2026
11:00 am – 12:30 pm CEST, Berlin, Paris, Madrid
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Fleming solar plant: GRS to build 235 MW in Kentucky – Inspenet

Author: Inspenet TV.
Publish date: 11 August 2026
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GRS has signed an agreement with Acciona Energía to develop Fleming Solar Farm , a 235 MW solar plant in Kentucky, USA. The project will position the facility among the largest photovoltaic developments in the state and strengthen both companies’ presence in the US energy market.


In addition, the construction will generate approximately 300 jobs during its peak phase. The project will also have a positive impact on the Fleming County economy through local hiring, business activity, and tax revenue associated with the facility.




Specifically, the Fleming solar project will have an announced capacity of 235 MWp. Acciona Energía expects the facility to become operational in May 2028 after progressing with construction and preliminary work over the coming months.


Due to its size, the solar plant will expand the photovoltaic capacity available in Kentucky, while at the same time allowing Acciona Energía to increase its US portfolio with a new large-scale generation asset.


According to the company, Fleming will become its fifth photovoltaic plant in the United States and its eighteenth renewable energy installation in the country. Acciona Energía had approximately 3 GW of installed renewable capacity in the United States when it announced the project’s progress.




Furthermore, the contract holds special significance within GRS’s US strategy. The company belongs to the Gransolar Group and specializes in the comprehensive execution of solar power plants through engineering, procurement, and construction services.


With Fleming Solar Farm, GRS will surpass 400 MWp of cumulative capacity across completed projects and plants currently under construction in the United States. This activity is distributed among six facilities developed by the company in the country.


The company also has an international portfolio of nearly 5 GW. The Fleming project expands its exposure to the United States, a market that GRS considers important within its international growth plans.




At a technical level, different companies from the Gransolar Group will participate in the execution of the solar plant.


GRS Engineering will be in charge of the engineering work for the project, while PV Hardware will supply and install the AxoneDuo Infinity solar trackers.




These systems allow the orientation of the panels to be modified throughout the day to improve the use of available radiation.


In large-scale photovoltaic installations , this type of technology can help increase energy capture during different operating hours. Fleming will use panels mounted on solar trackers as part of its technical configuration.




At the same time, Fleming Solar Farm will have direct repercussions on the county’s economic activity.


During the peak of construction activity, up to 300 jobs are expected to be created. Acciona Energía has also indicated that it will prioritize local companies, contractors, suppliers, and services whenever possible.


Furthermore, the facility is projected to generate tax revenue throughout its operational life. This revenue can contribute to the funding of services and infrastructure in Fleming County.


Once operational, Acciona’s project page estimates between five and seven permanent jobs associated with the facility.




Meanwhile, Fleming joins a US renewable portfolio that Acciona Energía has been expanding through solar, wind and storage systems projects .


The company is also developing other photovoltaic projects in Kentucky. This activity reflects the growing importance of solar energy within its generation strategy in the United States.


Globally, Acciona Energía reached 14,604 MW of installed renewable capacity during 2025. Of that figure, 4,271 MW corresponded to photovoltaic technology.




Finally, the award allows GRS to gain scale in one of the world’s largest energy markets while expanding its experience in large-scale solar projects.


The project combines construction, engineering, and technology supply within the same business group. This structure allows Gransolar to participate in various stages of Fleming Solar Farm and expand its activity within the utility-scale solar power plant segment .


With 235 MW of announced power, around 300 jobs during construction and a planned start-up in 2028, Fleming becomes a key piece for the growth of GRS and Acciona Energía in the United States.







Canadian Natural Resources will pause its major expansion projects in Canada’s oil sands until commitments made to the federal and Alberta governments become legally binding agreements. The decision affects Jackfish, which envisions a C$650 million investment to add 30,000 barrels per day, and Pike 2, valued at approximately C$2.5 billion, which aims to produce another 70,000 barrels per day. The Jackpine expansion, planned to add 150,000 barrels per day, also remains on hold.


The company is awaiting greater certainty on issues such as carbon pricing, permitting, and financial backing. Discussions also include Pathways, the carbon capture and storage project linked to the sector’s future growth. Meanwhile, Canadian Natural continues its strong performance, raising its 2026 production forecast to between 1.637 million and 1.682 million barrels of oil equivalent per day after reaching 1.68 million barrels per day in the second quarter.




Array Technologies closed the second quarter of 2016 with revenues of US$342.1 million, a 53% increase over the previous quarter. The solar tracker manufacturer also achieved a record order backlog of US$2.5 billion after adding US$500 million in new contracts. Furthermore, the company surpassed 100 GW of equipment shipped since its founding, a testament to its growing importance within the large-scale solar market.


The strong quarter also improved expectations for the full year 2026. Array raised its adjusted EBITDA forecast to between US$210 million and US$230 million and expects an adjusted annual gross margin of between 27% and 28%. The company maintained its revenue target of between US$1.4 billion and US$1.5 billion. Part of this growth is driven by new products for complex terrains and solutions that integrate more components into a solar plant. Equipment launched since 2023 already accounts for nearly half of its active orders.




The Transnet National Port Authority is seeking a private operator to develop and manage a new floating dry dock in the Port of Cape Town. The 25-year contract will stipulate that the selected company will be responsible for the design, financing, construction, operation, and maintenance of the facility. This initiative responds to increased maritime traffic along the Cape route and a growing demand for vessel services.


The future dry dock will allow for work such as hull maintenance, machinery overhauls, steel structure inspections, and specialized repairs. Transnet expects to increase the port’s capacity and strengthen its offering to the maritime industry. Interested parties can participate in an information session on September 3rd and will have until December 14th to submit their proposals.




Enbridge has signed an exclusive option to acquire the TTC Connector, a 40-kilometer pipeline that would strengthen its presence in the U.S. Gulf Coast LNG market. The infrastructure will connect the Tres Palacios gas storage facility to the Coastal Bend Header, part of the network that supplies Freeport LNG in Texas. The pipeline will have the capacity to transport 300 million cubic feet per day and is scheduled to begin operations by the end of 2026.


The project aligns with Enbridge’s expansion of gas storage in the region. The company is expanding facilities such as Egan, Moss Bluff, and Tres Palacios and expects its four Gulf Coast centers to reach nearly 150 billion cubic feet of capacity by 2033. With the TTC Connector, the company seeks to more directly link its storage to one of the largest LNG export terminals in the United States, Freeport LNG, which can handle 17 million tons annually.

INSPENET LLC
Houston, TX 77018
hola@inspenet.com

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Australia’s first 8-hour battery moves to full operations in New South Wales – pv-magazine.com

Germany-headquartered renewable energy developer RWE has received the go ahead from the Australian Energy Market Operator (AEMO) and transmission network service provider (TNSP) Transgrid to operate the 50 MW / 400 MWh Limondale—Australia’s first 8-hour—battery energy storage system (BESS).
Utilising 144 Tesla Megapack registered to charge at 100 MW and discharge at 50 MW, the project is located in the designated New South Wales (NSW) South-West Renewable Energy Zone (REZ) adjacent to the 314 MW RWE Limondale solar farm.
The solar farm sits on 770 hectares, utilises 872,000 solar panels and generates equivalent electricity to power 105,000 homes per year.
Located in the NSW Murray region, 23 kilometres south of Balranald, close to the Victorian border and 854 kilometres southwest of Sydney, the Limondale BESS was built in collaboration with US-headquartered energy company Tesla, Melbourne-headquartered electrical engineering company Beon Energy Solutions, and both Sydney-based energy services provider Lumea, and Transgrid.
The Limondale BESS connects to the grid via Limondale Solar Farm’s existing 33 kV substation, reducing need for new infrastructure.
RWE Renewables Europe and Australia Chief Executive Officer Sopna Sury said the project transforms battery storage in Australia.
“[It marks] a significant milestone in the development of long-duration energy storage and enhancing the reliability and resilience of the national energy system,” Sury said.
“Limondale BESS helps strengthen grid stability, supports a secure energy supply and enables more efficient use of renewable energy.”
Limondale BESS was sized at eight hours in response to the NSW government’s Electricity Infrastructure Roadmap (EIR) and was the first to receive a Long Duration Storage (LDS) Long-Term Energy Service Agreement (LTESA) as part of the first tender undertaken by ASL (an AEMO subsidiary).
RWE develops, builds and operates battery storage systems in the US, Europe and Australia, and currently operates BESS with a total capacity of 1.7 GW, with a further approximately 2.5 GW under construction.
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The new issue of pv magazine Global is out now!
Available in print and digital – get your copy today!
Entries open in seven categories: Modules, Inverters, BoS, BESS, Manufacturing, Sustainability, Projects.
April 01 – August 31, 2026
Tuesday, August 11, 2026
3:00 pm – 4:00 pm CEST, Berlin, Paris, Madrid
A two-day conference in Austin, Texas, bringing together leaders in US solar manufacturing, equipment specification, and factory execution.
Tuesday, August 18, 2026
7:00 pm – 8:00 pm CEST, Berlin, Paris, Madrid
Tuesday, August 25, 2026
10:00 am – 11:00 am CEST, Berlin, Paris, Madrid
Saudi Arabia is accelerating its clean energy transition—join the SunRise Arabia Clean Energy Conference 2026 in Riyadh to explore how solar PV and energy storage are powering its digital economy.
Thursday, August 27, 2026
5:30 am – 6:30 am CEST, Berlin, Paris, Madrid
pv magazine USA hosts its third multi-day virtual event on advancing U.S. solar and energy storage markets, covering financing, supply chains, and distributed energy’s role in grid resilience.
Thursday, October 7, 2026
11:00 am – 12:30 pm CEST, Berlin, Paris, Madrid
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Orlen’s Mažeikiai refinery to benefit from renewable electricity – ogj.com

Covering the operations of the oil and gas industry
Orlen SA subsidiary Orlen Lietuva AB has brought a 42.2-Mw solar farm online to supply renewable electricity to help power operations at its 10.4-million tonne/year refinery in Mažeikiai, Lithuania.
Orlen SA has brought a 42.2-Mw solar photovoltaic (PV) farm online to supply renewable energy that will help to power operations at subsidiary Orlen Lietuva AB’s 10.4-million tonne/year refinery in Mažeikiai, Lithuania.
Operable as of Aug. 11 and designed to generate about 45 gigawatt-hours (Gw-hr)/year of electricity, the Mažeikiai solar farm aims to reduce the refinery’s electricity procurement costs by about €4 million/year while supporting Orlen’s goal of increasing the share of renewables across its portfolio, the company said.
Located on site across 60 hectares on the refinery’s grounds, the solar farm consists of about 68,000 bifacial photovoltaic modules. Each module is rated at 620 w, the bifacial design of the modules enabling the capture of sunlight on both sides to improve energy output during lower-light conditions on cloudy days, according to Orlen.
The solar PV farm’s generation of about 45 Gw-hr of electricity will cover roughly 7% of the Mažeikiai manufacturing complex, where it will be dedicated to supplying power for day-to-day refinery operations, office buildings, and other critical infrastructure at the site.
Completed at an overall investment of nearly €35 million, Orlen said the solar farm project received €2.5 million in support from the European Union’s Modernization Fund.
 
Alongside strengthening the refinery’s energy security by providing an on-site source of reliable electricity, the new solar farm advances Orlen’s commitment to advancing regional energy transition initiatives.
“This is an important step towards reducing the environmental impact of our operations and lowering the [Mažeikiai] refinery’s operating costs,” said Dariusz Zonenberg, Orlen Lietuva’s chief executive officer.
“The project will increase the share of Orlen Lietuva’s electricity demand met by its own renewable generation, strengthening the company’s competitiveness and supporting the Orlen Group’s long-term strategy,” Zonenberg added.
Orlen said the project supports its 2035 strategy to expand renewable energy capacity and improve the efficiency of the group’s industrial assets, including those located in and outside of Poland.
Electrum sp. z o.o. of Bialystok, Poland, served as main contractor on the project, demonstrating Orlen’s commitment to bringing Polish expertise to even to company assets abroad, the operator said.
Upon announcing the project in September 2024, Orlen said use of the advanced bifacial modules at the solar farm were capable of generating up to 30% more energy than conventional monofacial counterparts.
By leveraging this technology, Orlen said the solar farm would be able to achieve its targeted generation of 45 Gw-hr of electricity, equivalent to powering about 15,000 households or charging nearly half a million electric vehicles.
Robert Brelsford joined Oil & Gas Journal in October 2013 as downstream technology editor after 8 years as a crude oil price and news reporter on spot crude transactions at the US Gulf Coast, West Coast, Canadian, and Latin American markets. He holds a BA (2000) in English from Rice University and an MS (2003) in education and social policy from Northwestern University.

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China's Gobi Desert is home to a solar plant that turns molten salt into overnight electricity – The Cool Down

© 2025 THE COOL DOWN COMPANY. All Rights Reserved. Do not sell or share my personal information. Reach us at hello@thecooldown.com.
The site generated more than 240 million kilowatt-hours of energy in 2025.
Photo Credit: TikTok
In China’s Gobi Desert, a massive project is highlighting a new way to harvest solar energy. 
An array of thousands of mirrors and a tower at its center are being used to heat salt to extreme temperatures. 
A TikTok video from The Nature Reporter (@the_nature_reporter) highlighted a concentrated solar plant outside Dunhuang in Northwest China. Its mirrors follow the sun and redirect the light to a central receiver. 
Would you believe this cutting-edge solar power station is built on a principle you probably learned in high school physics? A concave mirror concentrates sunlight at a focal point. Now scale that up to tens of thousands of mirrors, add molten salt to store the heat. From there, it works much like a coal-fired power plant. The heat turns water into steam, the steam spins a turbine, and the turbine drives a generator to produce electricity. Except there’s no coal and no CO₂ emissions. #solarpower #renewableenergy #concentratedsolar #china #climateaction
The plant uses that solar intensity to heat molten salt above 900 degrees Fahrenheit, and the stored heat is later used to make steam that turns a turbine and generates electricity.
Rather than relying on coal, the facility uses captured solar heat to run the same basic steam-and-turbine process used at many traditional power plants, avoiding the carbon dioxide pollution tied to fuel combustion.
According to The Nature Reporter, the site generated more than 240 million kilowatt-hours of energy in 2025, enough to cover the annual electricity needs of a small city in China.
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Unlike a conventional solar farm, the technology can continue working after the sun goes down by treating the heated salt like a powerful battery. The Nature Reporter explained, “the molten salt can store energy as heat for up to 11 hours.” 
A major issue for renewable power is matching supply with demand. Solar and wind output depends on the time of day and the weather. If sunlight or wind aren’t abundant, grid operators often lean on dirty fuels to fill the shortfall.
Thermal storage like this can shift solar energy into the evening, when households are cooking, doing laundry, running air conditioning, and charging phones, laptops, and electric vehicles. That ability can make electricity supply more consistent during the hours when use is highest.
For cities and businesses, it could also reduce dependence on fuel-burning backup power, which may lessen exposure to fuel price swings over time. Because the plant generates electricity without coal combustion, it points to a path toward cleaner air and fewer health risks linked to fuel-related pollution.
The Dunhuang facility also illustrates how combining different renewable resources instead of depending on only one can create a more reliable energy system. In the video, The Nature Reporter said that the city that made it through 2025 on renewable electricity did so by using concentrated solar power alongside wind, photovoltaic solar, and other sources.
With heat storage, mirror-based solar can be dispatched after sunset, while wind turbines and conventional solar panels contribute power whenever conditions allow. Used together, those technologies can help make grids with high renewable shares more reliable.
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© 2025 THE COOL DOWN COMPANY. All Rights Reserved. Do not sell or share my personal information. Reach us at hello@thecooldown.com.

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ENTSO-E Prepares Europe's Power Grids for the August 12 Eclipse – energynews.pro

On the eve of a total solar eclipse crossing Europe, ENTSO-E is coordinating grid operators to offset the rapid drop in photovoltaic output, as drought along the Danube simultaneously strains several nuclear plants.
A total solar eclipse crosses a large part of Europe late in the day on Wednesday, August 12, 2026, causing a brief but pronounced occultation of solar radiation. For the continent’s grid operators, the issue at stake is not security of supply but the technical management of a rapid, predictable swing in photovoltaic output, expected to drop and then recover within a few dozen minutes. The European Network of Transmission System Operators for Electricity (ENTSO-E), the association grouping Europe’s electricity transmission grid operators, announced on Friday, August 7, 2026, the rollout of coordinated preparatory measures among the national operators involved.
The operational challenge lies more in the speed of the phenomenon than in its scale. To manage it, operators are mobilizing mechanisms already used during previous episodes of strong solar variability: temporary ramp-up of gas and coal plants, and activation of the automatic Frequency Restoration Reserve (aFRR), which continuously adjusts the balance between electricity supply and demand. ENTSO-E has set up a coordination unit bringing together national operators to share information before, during and after the event. Elsewhere in the world, solar capacity continues to expand, as illustrated by the 155 MW solar power purchase agreement signed by RWE and Google in Oklahoma or the recent financing secured by Sonnedix worth 730 million euros for its solar assets across Southern Europe, a region particularly exposed to Wednesday’s eclipse.
The scale of the impact varies significantly from one country to another, depending both on the trajectory of the lunar shadow and on the weight of installed photovoltaic capacity in each power system. The Iberian Peninsula, where the eclipse is total and where solar accounts for a large share of the electricity mix, ranks among the most exposed areas, according to Red Eléctrica, Spain’s grid operator. RTE, France’s grid operator, expects a more limited impact, as the country’s solar fleet remains proportionally smaller than those of Germany or Spain. In the United Kingdom, the National Energy System Operator (NESO) is also monitoring the situation, even though the country is not crossed by totality.
This eclipse preparation comes as a tension of an entirely different order weighs on the European power system since mid-July. A prolonged heatwave and severe drought have reduced the flow of several rivers, including the Danube, since July 16, 2026, forcing some nuclear plants to cut output or shut down altogether for lack of sufficient cooling water. Romania, where Nuclearelectrica operates the Cernavodă nuclear plant, and Hungary have both been affected. In Hungary, managing this episode falls to Prime Minister Péter Magyar, who took office on May 9, 2026, succeeding Viktor Orbán.
For both plants involved, this shutdown or output reduction tied to insufficient cooling water marks a situation without precedent since they entered service. The situation remained fluid as of August 11, 2026, the eve of the eclipse, with units returned to service only to face renewed shutdown risks as river levels fluctuated. Grid operators are thus approaching the August 12 eclipse against a backdrop in which two distinct power sources, solar and nuclear, face unusual weather-related constraints at the same time.
Malawian state utility EGENCO has commissioned the first 10-megawatt phase of its Salima solar plant at Nanjoka, after the project's original scope and schedule underwent significa
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JinkoSolar Unveils “Sunny 365” Integrated PV-Storage Solutions for Retail and Supermarkets – solarquarter.com

JinkoSolar Unveils “Sunny 365” Integrated PV-Storage Solutions for Retail and Supermarkets  solarquarter.com
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The proof is in for biosolar roof innovation – HVAC&R News

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Research has demonstrated that the first substantial installation of a biosolar roof in Australia at Bradfield City in Sydney’s West delivers improved energy generation while supporting biodiversity.
The research team from University of Technology Sydney (UTS), led by UTS Associate Professor Dr Peter Irga, partnered with the Bradfield Development Authority to install a 1,300sqm biosolar roof in the award-winning First Building.
The installation comprises 319 north-facing solar panels with more than 14,000 native Cumberland Plain plants in a roof-top landscape designed by Hassell in collaboration with green roof specialist, Three Owls Landscaping.
It is attempting to overcome a major challenge for solar photovoltaic (PV) efficiency, which is that in high temperatures, the panels become less effective. Generally, they perform best at 25oC, and efficiency drops by 2% for every degree above that threshold.
The native landscape mitigates this. Through evapotranspiration, the vegetation cools the surrounding environment. The pilot found the panels outperformed those on a conventional roof by an average of 11.1% during summer, with peak gains of up to 23.25% on very hot days.
During extreme heat events, the biosolar roof was up to 28°C cooler than a conventional aluminium roof.
“We found the cooling effect of the vegetation was highly dynamic, and became more effective as the ambient temperature rose,” Associate Professor Irga said.
“This means the hotter the day, the harder the plants work to moderate the building’s microclimate and keep the solar panels operating efficiently.”
The study also found the roof retained an average of 73 per cent of stormwater runoff, removed more than 90 per cent of key pollutants and supported 39 species of birds, insects, mammals and gastropods, demonstrating the benefits of integrating green infrastructure into urban development.
“The roof acts as a giant natural filter, substantially reducing the volume of toxic metals entering urban stormwater networks,” Associate Professor Irga said.
“At the same time, the vegetation captures roughly 65 grams of air pollutants each day, preventing nearly 24 kilograms of air pollutants from entering the local atmosphere each year.”
Under Bradfield City’s Master Plan framework, there is a requirement for 80% of suitable roof space on new buildings within Bradfield City to incorporate green or biosolar roofs.
BDA Chief Executive Officer Ken Morrison said the First Building assessment provides an evidence-based foundation for championing climate responsive design for the city’s future development.
“Bradfield City presents a once-in-a-generation opportunity to embed sustainable solutions from the outset in Australia’s first new city in a century,” Morrison says.
“These outstanding results demonstrate what can be achieved when sustainability is integrated from day one.
“As Bradfield City continues to grow, the goal is that sustainable, climate-resilient architecture will be the standard, not the exception.”
The biosolar roof approach is also being piloted on a range of prefabricated, modular cabins being developed by Future Property Group. Read more about the initiative here.
Main image: Dr Peter Irga on-site at First Building. Image courtesy of UTS.
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HVAC&R News is a joint print and digital publication covering Australia’s HVAC&R Industry, brought to you by AIRAH.
AIRAH represents professionals and practitioners working in the heating, ventilation, air conditioning, and refrigeration (HVAC&R) and building services industries.
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60 MW solar array installed at diary farm in China – Green Building Africa

China Huadian Corporation has commissioned what it says is Asia’s largest single site rooftop solar project at a dairy farm, linking commercial scale renewable power directly to animal husbandry operations. The 60 MW AC installation sits at Modern Farming’s facility in Wuhe County, Bengbu City, Anhui Province, and was connected by Huadian subsidiary Anhui Huadian New Energy as a landmark agrivoltaic scheme.
The system covers about 560 000 square metres across cowshed rooftops and nearby vacant land, pairing on site generation with an integrated 16.5 MW / 33 MWh battery energy storage system designed for grid peak shaving. Huadian expects the project to deliver an average of 84 million kWh of clean electricity each year, feeding power into the regional grid during periods of high local demand.
The design delivers dual benefits by using elevated solar panels as structural roofing that provides shade and cooling for dairy cows, reducing heat stress while generating power. By generating substantial clean energy across existing farm structures, the project avoids the need to clear or purchase additional agricultural land, while the dedicated 33 MWh storage component helps stabilise power delivery to the grid.
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Greene Co Supervisors Hears Alliant Energy Solar Farm Project Update – Raccoon Valley Radio

The Greene County Board of Supervisors met Monday in regular session.
During reports, Sheriff Jack Williams said that the new county jail remains to be on schedule for the final state inspection on August 24th. He is planning to host public tours that same weekend before getting everything transitioned to the new facility by the following Monday.
Jefferson City Administrator Scott Peterson then gave an update. He said the contract has been signed for the Westwood sidewalk project, and work could start as early as the week of Labor Day. He also noted that a document has been approved by the Iowa Department of Transportation guaranteeing three access points from Highways 30 and 4 for additional development, and the city purchased property from Alliant Energy to install a public parking lot south of Jefferson Telecom.
The Board also heard an update on the solar panel farm project from Alliant Energy. Spokesperson Justin Foss said they are continuing toward their project as they just purchased a large transformer that was a $7 million investment. He said they had to wait on the certainty of some tariffs, but now the company feels more confident to move forward with the plans to begin installation of the 100-megawatt project in 2027-2028. 
Foss also requested to add a battery storage area to the county’s solar panel ordinance and the Board agreed to look into it.
Next, the Board discussed cost sharing for a mortuary cooler unit with the crematory owner, Aaron Schroeder and Slinginger-Schroeder Funeral Home and Crematory. The issue came up at a recent Supervisors meeting about the need for a cooling unit, due to the amount of time it takes to get medical records for several reasons, some due to it being an unattended death or if an autopsy was needed. 
Schroeder told the Board that he can only hold a body for up to 72 hours and then a decision was needed to be made. The Board agreed to move forward with a creation of a 28E agreement.
The Board also approved to increase the county crematory fees from $1,250 to $2,250. They also approved a resolution to hire Candice Salvin as a part-time Emergency Medical Technician for the Ambulance Department, re-appointed Karla Janning to the Region XII Council of Governments Housing Authority Board and the County Auditor’s year end cash report was also approved. Additionally, the Board also approved to direct the Commissioner of Elections for the cities to hold their Local Option Sales and Service Tax revenue purpose statements on the November ballot. Auditor Billie Jo Hoskins said that all cities are wanting to remove their respective sunsets on LOSST. 
Finally, the Supervisors acted as the Drainage District Board of Trustees and approved $3,500 claims from AgriVia for engineering services and $3,650 as a pass through for two wetland projects with the Iowa Department of Agriculture and Land Stewardship.
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Kosol Energie Introduces Enhanced Hail-Resistant N-Type Glass-to-Glass Solar Modules for Extreme Weather Conditions – solarquarter.com

Kosol Energie Introduces Enhanced Hail-Resistant N-Type Glass-to-Glass Solar Modules for Extreme Weather Conditions  solarquarter.com
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Powering the future from above – Saint Mary's University

New PV panels on the rooftop of McNally East will generate electricity for the building
For seven decades, the roof of McNally East had exactly one job: keep the weather out. As of this summer, it has a second onepowering the building beneath it.
Saint Mary’s University has completed a full renewal of the 70-year-old roof on McNally East, part of the historic McNally complex at the heart of campus. The project pairs modern, climate-resilient construction with a new rooftop photovoltaic (PV) array.
The system will generate approximately 170,000 kilowatt-hours of renewable electricity each year, reducing the university’s reliance on grid power. The installation is expected to cut the building’s carbon footprint by at least 85 tonnes annually.
McNally East after rooftop upgrades
McNally East before
“Every time we build or renovate on this campus, we ask the same question: how can this asset give more back?” says Dennis Gillis, Senior Director of Facilities Management at Saint Mary’s. “McNally East needed a new roof either way. Now it keeps the weather out, keeps costs down and generates clean power every day. That’s what responsible stewardship looks like in 2026.”
The upgraded roof boosts insulation values six-fold, from R-5 to R-30, improving heating and cooling efficiency and eliminating a further five tonnes of emissions each year. Together, the improvements are projected to save at least $28,000 annually in energy costs.
McNally East roof under construction
The roof and solar array were designed for Halifax’s demanding coastal climate. The panel layout includes dedicated pathways and spacing for safe, efficient maintenance, protecting the system’s performance over the long term. The new roofing system will shield the building for decades to come.
On campus, a digital dashboard inside McNally East displays the building’s clean energy production in real time, allowing students, employees and visitors to track solar generation as it happens throughout the day.
The project was funded by the Government of Canada and the Estate of Anne J. and Albert T. Isaacs DipENG’55.
McNally East’s original roof was built around the same time Albert Isaacs was completing his engineering diploma at Saint Mary’s. Seventy years later, his legacy is helping transform that same building into a source of clean power for the campus where the university’s newest generation of engineers will begin their studies this fall.
McNally East is the latest chapter in a clean energy story that has been drawing national attention to the South End campus for years. In 2024, Saint Mary’s completed the recladding of the 22-storey Loyola Residence, wrapping the tower’s south-facing wall in building-integrated photovoltaics (BIPV), solar technology that generates electricity while forming part of the building itself.
Loyola Residence was recladded with building-integrated photovoltaic panels in 2024
Rather than simply replacing deteriorating concrete on a 50-year-old residence, the university turned a maintenance challenge into a clean energy landmark. Delivered with Toronto-based Mitrex, the project earned Saint Mary’s a Clean50 Top Project Award, recognizing it as one of Canada’s most innovative projects addressing climate change. It also drew national media coverage as the tallest solar-integrated building in North America.
Saint Mary’s has reduced its carbon footprint by 51.7 per cent since 2005 through a deliberate sequence of upgrades, including replacing its steam heating plant with a high-efficiency hot water system, switching from oil to natural gas for heating, converting campus lighting to LEDs, and benefiting from an increasingly renewable provincial electricity supply.
Future sustainability projects include a green roof for the Patrick Power Library, a new roof design for the Homburg Centre for Health & Wellness, and a solar canopy for the Science Building parking lot.
“A university’s campus can teach as powerfully as its classrooms and show our values in action,” says Dr. Michael Khan, President and Vice-Chancellor of Saint Mary’s University. “Saint Mary’s is part of the energy transition here in Halifax. We’re building it, measuring it and, starting this fall, teaching it through two brand-new programs.”
In September 2026, Saint Mary’s will launch two programs that connect the university’s sustainability leadership with career-ready education on a campus that doubles as a working laboratory.
The new Sustainability Management major at the Sobey School of Business teaches students how organizations grow while protecting the environment and strengthening communities. Graduates will step into some of the economy’s fastest-growing fields, from sustainable finance and ESG reporting to consulting and social enterprise.
The new Renewable Energy Engineering stream, one of two options in the just-launched Bachelor of Engineering in Resource Engineering, will train students to design, build and operate the clean power systems of the future. Coursework will cover solar and wind energy, biomass, grid integration and energy storage, supported by laboratory learning, fieldwork and paid co-op opportunities.
Carlos Fernando Aguilar Estavillo had planned to study industrial engineering while attending Saint Mary’s. That changed when he learned about the new Renewable Energy Engineering stream.
“When they announced it, I was super excited,” says Aguilar Estavillo. “I’m especially interested in wind energy here in Nova Scotia, but also battery storage and grid integration. I think universities should not only teach sustainability, but they should also demonstrate it. The new solar panels on campus let students see how renewable energy works in real life.”
Carlos, second from right, visits a solar farm on a tour led by SMU alum Karsen Cain with SwitchPace. He’s joined by engineering classmates Aiden Sheppard and Anabella Ferrari. Students will start the new Renewable Energy Engineering program at SMU this fall.
Saint Mary’s sits in Halifax’s historic South End, on a walkable peninsula minutes from the Atlantic Ocean, in a province working toward 80 per cent renewable electricity by 2030.[1] As Nova Scotia’s role in the clean energy transition grows, Saint Mary’s is helping shape that future, both through the infrastructure it builds and the students it prepares.
The next time you are in McNally East, look up and then look at the digital dashboard; it will tell you exactly what the sun has done for Saint Mary’s that day.
Learn more at smu.ca/sustainabilty
[1] CER – Renewable Energy in Canada – Nova Scotia
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Five decades of research leads to solar PV’s emergence as the world’s dominant energy source – pv magazine India

As the world aims to limit global warming well below 2 C, the defossilization of energy systems hinges on two technologies above all others: solar PV and wind power. Solar PV has found its way into the energy system faster than any electricity source in the history of humankind, propelled by plummeting costs, near-universal availability, and diversified system applications. Yet one question runs persistently through the modeling literature: just how dominant will solar PV become and why do studies disagree so sharply on the answer?
A new study by researchers from Leibniz University Hannover and LUT University, Prospects for solar photovoltaics in highly renewable energy transition scenarios towards a dominant future energy source, sets out to resolve that question. The systematic review covers 60 peer-reviewed energy transition studies, each covering at least the power, heat, and transport sectors while reaching at least 95% renewable energy supply by 2050. Beyond the conclusions drawn by the reviewed studies, an emphasis lies on the assumptions driving their results.
In a second study by researchers from LUT University, Leibniz University Hannover, Joint Research Centre of the European Commission, and Technical University of Denmark covering a Review of the progressing role of solar photovoltaics in energy transition scenarios over five decades of 100% renewable energy systems research, the authors investigated the core question which major milestones in 100% renewable energy systems studies enabled the rise of solar PV from a niche application to the dominant source of energy for humankind over the five decades of this research field.
Key drivers influencing solar PV supply shares
The central finding pairs broad agreement with striking variance. Most studies place the combined share of solar PV and wind power in electricity generation between 80% and 99% by 2050. Such a finding is also known from global energy transition studies. But the solar PV share alone spans a large range from 5% to 98%. According to the study, this spread is governed by the solar full load hours available in a country, the techno-economic assumptions built into each model, and the complexity of the modeling.
Cost assumptions are frequently out of date. Across the reviewed studies, capital expenditures (capex) figures for utility-scale solar PV in 2050 range from €151 ($174.1) to €720 /kW. Around 18% of studies still assume more than €500 /kW, a level that solar PV has already undercut in the real world today. Because solar PV costs have fallen faster than almost any scenario expected, models carrying these legacy figures systematically understate the future role of solar PV.
Technology representation matters just as much as cost. About a third of the studies model a single, generic solar PV power technology, ignoring the expanding toolbox of PV system applications: single-axis tracking, bifacial modules, floating PV, agrivoltaics, and rooftop prosumers, to name a few. Modeling choices compound the effect: coarse temporal resolution, such as representative time slices instead of hourly simulation, can significantly distort results for a resource as variable as solar PV, whereas 80% of all studies in the field are carried out at hourly resolution. The study shows that models combining a rich set of solar PV technologies with full sector coupling consistently report the highest and arguably most realistic solar PV shares.
With sector coupling, solar PV’s reach extends well beyond the power grid. Power-to-X routes convert cheap solar electricity into hydrogene-fuelse-chemicalse-materialse-foodclean water, and e-forests, serving the hard-to-electrify segments of transportindustry, that would otherwise depend on biofuels or fossil imports. Typically bioenergy-dominated carbon dioxide removal experiences unprecedented opportunities for climate restoration. Just over half of the reviewed studies include at least one e-fuel route, and wherever these routes appear, the value of solar PV for the system rises. The effect is pronounced enough that the energy systems can be described as an emerging Power-to-X Economy, in essence often a Solar-to-X Economy.
Solar PV share in 2050 plotted against full load hours across the reviewed studies; the empirical fit underpins the global projection.
Solar PV share for global energy supply
The study derives an empirical relationship between a country’s solar full load hours and its expected solar PV share. Applied across the globe and weighted by population, that relationship yields a cross-study estimate of solar PV supplying roughly 61% of the world’s electricity by 2050. Crucially, this figure is not the output of any single model but a synthesis of dozens of independent teams and methodologies. Single studies can reach 70% on a global scale or even more, which has been taken up by the global PV community for a 75 TW target by mid-century.
The result echoes a broader shift. Independent economic projections have suggested that a global “solar tipping point” may already have passed, with solar gradually coming to dominate electricity markets even in the absence of further climate policy. With about 3 TW of PV installed worldwide by 2025 and close to 700 GW added in that single year, the trajectory is already well under way. In 2025, about 70% of all newly installed power capacity globally was solar PV, finally the Dawn of the Solar Age.
The future role of solar PV is routinely underestimated, such as from the International Energy Agency and the studies used for the Intergovernmental Panel on Climate Change, and correcting for outdated costs and oversimplified modeling reveals solar PV as the dominant energy source of the coming decades. For modelers, the message is to retire pessimistic cost curves and represent the full breadth of available PV technologies. For policymakers, it is a reminder that planning around yesterday’s assumptions risks building the energy system of the past, rather than the one that is already arriving.
Milestones in 100% renewable energy systems research revealing the role of solar PV
Since the mid-1970s studies for 100% renewable energy systems have been investigated, with a typically negligible solar PV share in early research, whereas in recent studies a range of 60-80% in global solar PV supply can be found. Based on a database of over 1000 articles on 100% renewable energy systems analyses, a new study investigated which major milestones led to the development from a niche technology to dominatie the global power markets.
Within the database, 29 milestone articles have been identified that introduced a new element for the role of solar PV within the research field. These milestones were reached in all decades, and the four largest groups are (i) around visionary scoping of the role of PV, (ii) advances in PV system applications, (iii) expanding economic insights, and (iv) methodological advancements leading to more realistic descriptions of PV in energy-industry systems. In most advanced 100% renewable energy system analyses, solar PV can be described in up to eight PV system applications, in hourly resolution, and in interconnected multi-node study designs. In addition, such analyses can cover all sectors, spanning powerheattransportindustrydesalination, and carbon dioxide removal, with comprehensive power-to-X routes, and broad flexibility portfolios, such as grids, storage and demand response with diversified sector coupling, and energy conversion routes. However, even a basic PV system differentiation of ground-mounted, utility-scale and rooftop PV is far from standard, as only 16% of all studies include this differentiation. On a global level, studies increasingly find a PV share of 60%–80% in total energy supply around mid-century or beyond, with a 61% projected average across transition studies.
The 29 milestones are composed of 13 with visionary scoping, 16 with PV system application advances, 15 expanding the economic insights, 13 with methodological advances, and 4 with particular other contributions, whereas single articles can address more than one category. In the 1970s, the visionary scoping dominated. The 1980s to 2000s were faced with limited research activities in the field, whereas in the 2010s a broad diversity of methodological advancements laid the basis for the modern 100% renewable energy systems analyses. In the 2020s, almost all milestones expanded the methods, the economic insights, and the diversity of PV systems.
Important milestone articles widened the view to very high solar PV shares, in the late 1970s on a conceptual basis and in the mid-1990s on a quantitative analysis. The advancement toward hourly resolution marks the possibility for detailed technical feasibility analyses. The value of distributed rooftop PV was early identified and could be finally quantified as part of a least-cost energy system solution, despite the fact that utility-scale PV systems reach lower electricity generation cost. Implementing a broad diversity of power-to-X routes and flexibility options in combination with optimization models aiming for cost minimization for given technical and societal constraints revealed the solar PV contribution potential between 60-80% for all the energy demand of humankind.
The recent five decades of 100% renewable energy systems research laid the basis for the milestones for comprehensive analyses with a projected 61% PV share or more and to investigate the role of solar PV to establish a sustainable civilization, the rise of the Solar Age.
Authors: Dennis Bredemeier, Dominik Keiner, and Christian Breyer
This article is part of a monthly column by LUT University.
Research at LUT University encompasses various analyses related to power, heat, transport, industry, desalination, and carbon dioxide removal options. Power-to-X research is a core topic at the university, integrated into the focus areas of Planetary Resources, Business and Society, Digital Revolution, and Energy Transition. Solar energy plays a key role in all research aspects.
The views and opinions expressed in this article are the author’s own, and do not necessarily reflect those held by pv magazine.
This content is protected by copyright and may not be reused. If you want to cooperate with us and would like to reuse some of our content, please contact: [email protected].
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Grapes of math: how solar plus sheep equals good wine – Yahoo News Australia

At a cool climate winery in the shadow of an extinct volcano, solar panels soak up the sunshine and sheep quietly graze under the vines.
Generating renewable energy and letting sheep naturally slash vines and fertilise the soil is how See Saw organic winery tries to boost both sustainability and profit.
Maggie Jarrett, the sustainability manager at her family's winery on the outskirts of Orange, central western NSW, said renewable energy could be considered another product of the land.
"We genuinely believe this is one of the biggest opportunities regional, rural Australia and the agriculture sector have had in at least a generation," Ms Jarrett told the National Renewables in Agriculture conference in Orange on Wednesday.
Sheep graze near solar panels at the Williamdale Solar Farm, 35km south of Canberra. (Mick Tsikas/AAP PHOTOS)
The family has planted thousands of trees, fenced off waterways, switched grape varieties to suit the climate, bought electric vehicles and installed 10-kilowatt solar systems across their three sites.
See Saw is also part of a pilot program to test the feasibility of floating solar panels to generate energy and reduce evaporation.
Ms Jarrett recently travelled overseas as a Nuffield scholar, a prominent agricultural accolade, to examine how environmental reporting and sustainability data could unlock value for producers.
Her research found farmers prospered when they understood the intricacies of their operation, such as soil and climate conditions, alongside the global context of markets and policy.
The Jarrett family's goal is to improve both the landscape and profit margins, with a long-term goal of a decarbonised closed-loop operation, she said.
"Abundant energy and a stable income stream made us more creative, more willing to experiment instead of being stuck in a survival mindset," Ms Jarrett said.
The conference attracted hundreds of farmers and policymakers, which also heard from a Victorian dairy farmer using solar and a poultry farmer turning manure into energy and fertiliser.
A conference has been told how farmers are incorporating renewable energy into their operations. (Mick Tsikas/AAP PHOTOS)
Australian National University climatologist Mark Howden urged farmers to listen to science rather than online misinformation about climate change. 
Incorporating renewable energy into agriculture could cushion the impact of climate risks, such as drought, heat and floods, Professor Howden said.
"I would suggest … the future of Australian farming is not what it used to be, growing grain and livestock," he said.
"It's doing all those things, plus becoming energy farmers and that's a really great future for Australian agriculture."
The renewables roll-out has faced backlash in rural communities over land use, a perceived lack of consultation and the destruction of habitats and Indigenous sites.
NSW Environment Minister Penny Sharpe said mistakes were inevitable during an accelerated roll-out of infrastructure.
NSW Environment Minister Penny Sharpe said the government was building 'trust' with communities. (Bianca De Marchi/AAP PHOTOS)
The government was continually working to improve standards, consultation and benefits for host communities, Ms Sharpe said.
"We cannot build trust with communities if we don't do what we say we're going to do," she told reporters.
Ms Jarrett will present her international research at the Nuffield Australia conference in Darwin in September.
Position Preview Week continues with the RBs! Matt Harmon and Justin Boone break down the top 12 consensus RBs you need to know, revealing their green, yellow and red light RBs at Yahoo ADP. The two identify the RBs they’re targeting, fading and keeping a close eye on at their current cost. They round out the show with sleeper RBs managers need to know, including late round backs with legitimate RB1 upside.
The Astros said Altuve suffered a foot contusion on Tuesday in San Francisco.
With Pope Leo XIV on their side, the Chicago White Sox invoked their most prominent fan on Tuesday, with a pope hat giveaway.
Kurtz is sidelined in a brace for at least four weeks, making his return to a fourth-place A's team in September unlikely.
Football is an inherently dangerous sport. But this isn't part of the normal equation.
The sophomore signal-caller suffered a defeat to the Buckeyes in last year's iteration of "The Game."
Stephanie White walked off after her roughly two-minute statement ahead of Tuesday's contest with the New York Liberty.
The closely watched Consumer Price Index is expected to rise 3.4% in July from a year ago, according to economists surveyed by Bloomberg, down slightly from June's 3.5% annual increase.
Our latest power rankings look at how the players who changed threads at the trade deadline have fared so far.
There was good news from 49ers camp Tuesday. Mike Evans was back at practice. Kyle Shanahan, meanwhile, downplayed Bosa's tendinitis as "normal."

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Arctech Wins 425 MW of Solar Projects in Kyrgyzstan and Kazakhstan – energynews.pro

Chinese solar tracker supplier Arctech has secured 425 MW of new utility-scale photovoltaic projects in Central Asia, including 325 MW in Kyrgyzstan and 100 MW in Kazakhstan, strengthening its regional footprint.
Chinese solar tracker supplier Arctech announced it has secured 425 megawatts (MW) of new utility-scale photovoltaic projects across Central Asia, according to a statement released on August 11, 2026. The contracts include a 325 MW SkyLine II project in Kyrgyzstan and a 100 MW SkyLine II project in Kazakhstan. The company, headquartered in Kunshan, China, describes the region as one of the world’s fastest-growing renewable energy markets, at a time when other solar players are expanding their own operations, such as Sonnedix, which raised €730 million to finance its solar assets across Southern Europe, or Scatec, which started construction of a 120 MW solar plant in Tunisia. These new contracts strengthen Arctech’s presence in a region marked by demanding terrain conditions.
The 325 MW project in Kyrgyzstan must contend with frost-heave soils, gravel areas and complex terrain, which complicates both foundation design and on-site construction, according to Arctech. The company says it developed a customized foundation solution tailored to local ground conditions, while SkyLine II’s terrain adaptability reportedly helped accommodate the complex topography.
Extensive pre-assembly and optimized construction planning reportedly streamlined on-site installation and improved efficiency, according to the supplier. These claims, put forward by Arctech, remain the company’s own statements about its execution methods.
The 100 MW Kazakh project is situated in an environment also marked by frost-heave soils and varying geological conditions. Arctech says it applied site-specific engineering optimization and foundation verification to ensure the tracking system and foundations were well matched to local ground conditions. Tailored delivery planning also reportedly supported efficient project execution, according to the company.
Together, these two projects demonstrate, according to Arctech, its ability to combine terrain-adaptive tracking technology with site-specific engineering solutions. The company presents this combination as a reliability factor for deploying solar projects across diverse and demanding environments.
These new contracts add to a growing track record for Arctech in the region. To date, the company says it has delivered more than 3.5 gigawatts (GW) of solar tracking and mounting systems across Central Asia, including more than 700 MW in Kyrgyzstan and more than 900 MW in Kazakhstan. Arctech attributes this presence to its dedicated Eurasia team, localized engineering expertise and long-standing regional partnerships. As Central Asia accelerates its shift toward renewable energy, demand for reliable, adaptable utility-scale solar solutions is expected to keep growing, according to the company.
Malawian state utility EGENCO has commissioned the first 10-megawatt phase of its Salima solar plant at Nanjoka, after the project's original scope and schedule underwent significa
The reference media for the energy transition: markets, projects, regulation and jobs.

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288 solar panels went onto a Swiss roof and not one of them has ever been replaced, while the inverter underneath has been swapped five times, and 48 of the originals are still feeding the grid today – Autonocion.com

By: Luis Reyes
Published: Aug 11, at 3:30pm ET
Every solar panel sold in the US comes with a performance warranty, usually 25 years, sometimes 30. Most buyers read that number as a lifespan. It isn’t one.
A performance warranty is a financial promise about power output, written by a manufacturer’s legal department, and it stops having anything to say the day it expires. What happens in year 31 is a separate question, and paperwork can’t answer it. You need a roof that has already done it.
There is one, in a village called Canobbio just outside Lugano, in the Italian-speaking corner of Switzerland. On May 13, 1982, shortly after 7 a.m., an array of 288 panels rated at 10.6 kW started feeding the Swiss grid.
It is still there in 2026, still connected, and it was built with panels made by an oil company. The array is called TISO, short for Ticino Solare, and it is the longest continuous field record anyone has of what happens to a solar panel left outdoors for four decades.
The modules came from ARCO Solar, the manufacturing arm of Atlantic Richfield. That was not a fluke. Atlantic Richfield spent the late 1970s diversifying away from crude, buying into copper, aluminum and coal, and expanding into solar panel manufacturing along the way.
Charlie Gay, who spent much of his career at ARCO Solar and later at Siemens Solar Industries, wrote the ARCO chapter of SUPSI’s own 40-year history of the plant. His account is blunt about who bankrolled early photovoltaics. Atlantic Richfield, BP, Exxon, Mobil, Shell, Amoco and Total were all in it, and their money and their polymer chemistry gave the technology a running start.
The 288 modules bolted to the Trevano roof were ASI 2300s, rated at 37 W apiece. They were built to the Jet Propulsion Laboratory’s “Block IV” design rules, with a tempered glass front and a backsheet of steel foil sandwiched between layers of Tedlar.
The cells sat in polyvinyl butyral, and the lamination process was lifted straight from the way car windshields were being made. That detail matters more than it sounds. Three different suppliers provided that PVB, and forty years later it is the single thing that decided which panels survived.
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The project belonged to Mario Camani, an energy official in the canton of Ticino who wanted to prove a grid-tied array could be safe and boring. Construction started in December 1981. The panels went up on three planes spaced 10 meters apart, tilted at 65 degrees to grab the winter sun.
By 2 p.m. on the first day, 52 people had already turned up to look at it, driving over from the European Community’s photovoltaic conference running that week in Stresa, just across the Italian border.
One honest asterisk on the “first in Europe” line, and it comes from SUPSI’s own book. David Stickelberger, managing director of the Swiss solar association Swissolar, notes that researchers at the Swiss Federal Institute for Reactor Research had already pushed 1.2 kW into the grid from a tool shed roof in April 1981.
Those modules are long gone. TISO’s are not, which is why the literature treats it as the first grid-connected PV plant in Europe.
This is the part that usually gets flattened into a nicer story than the truth. The array is not a sealed time capsule of 288 panels humming along untouched since the Falklands War.
Mauro Caccivio, who runs SUPSI’s photovoltaic sector, put a number on it in a 2024 interview with the Swiss construction journal Espazium: 48 of the original 288 modules are still active and still performing. SUPSI’s institute lists the plant as operating at Campus Trevano, even though the lab itself has since moved to a newer campus in Mendrisio.
The array has also been rebuilt more than once. The wiring layout changed repeatedly as inverters were swapped. At the end of 2008 the whole thing came down for a site change and went back up about 18 months later on a different roof in a new configuration.
Then there is the inverter count. Over the plant’s life the inverters were changed five times. The original Abacus unit lasted around a decade before an Invertomatic replaced it, with longer strings and slightly fewer modules wired in. SMA hardware came later and the design went back to the full 288.
The modules are the only components in the entire system that were never replaced. A handful had junction boxes and bypass diodes swapped out. None were refurbished, none were revamped, and all of them aged together in the same weather.
Domenico Chianese, who joined the project in 1988 and spent his career on it, summed up four decades of maintenance logs by pointing out that the panels were always more reliable than the electronics.
In 2017 the Swiss Federal Office of Energy paid to find out what had actually happened. Alessandro Virtuani of EPFL and Caccivio at the SUPSI PVLab pulled every module off the roof, measured them indoors, and spent roughly two years digging through 35 years of paper records.
The first of their two papers in Progress in Photovoltaics split the array into two populations. About 21.5 percent of the modules had degraded at a mean of 0.2 percent per year. The other 72.9 percent formed a longer, uglier tail: a mode of 0.54, a median of 0.62 and a mean of 0.69 percent per year.
The second paper explained why. It wasn’t the cells, the glass, the mounting angle or the Swiss winters. It was the encapsulant.
All three formulations were polyvinyl butyral built on the same base polymer, but three separate suppliers used different additives. One of those formulations, present in roughly a tenth of the modules, held the loss to 0.2 percent a year. That is under 10 percent of total power gone in 35 years.
You could see it without instruments. The good panels barely yellowed. The bad ones went brown.
Measured as total power lost between 1982 and 2017, the three classes came in at 4.9 percent, 19.1 percent and 26.1 percent. Around 60 percent of the array was still above 80 percent of its original output after 35 years, or roughly 70 percent once you allow for the three-point measurement uncertainty.
Virtuani’s takeaway was that the bill of materials matters, which reads like a platitude until you remember it means a purchasing decision made in California in 1980 is still visible on a Swiss roof today.
The failures were not all cosmetic. Around 87.5 percent of the modules showed minor delamination at the front, and junction box problems turned up across all three groups. What the array never showed was water getting in. That steel foil backsheet behaves closer to a modern glass-glass panel than to the glass-and-plastic sandwich that replaced it.
TISO is one array, which is a fair objection. So in January a SUPSI-led team published a broader answer in the Royal Society of Chemistry journal EES Solar, covering six grid-connected Swiss systems installed between 1987 and 1993.
The average system-level performance loss came out at 0.24 percent per year, give or take 0.16. The figure normally quoted in the literature is 0.75 to 1 percent.
The hardware is familiar. Every system used ARCO AM55, Siemens SM55, SM55-HO or SM75 modules, all built at the Camarillo, California plant that Siemens Solar acquired along with ARCO Solar in 1990. Atlantic Richfield’s exit from solar was permanent, and BP finished the job by absorbing what was left of ARCO itself in a $27 billion deal that closed in April 2000.
The interesting result is where the panels aged best. The team split the sites by altitude: rooftops at Möhlin and Burgdorf between 310 and 552 meters, the Mont-Soleil plant at 1,270 meters, and two facade-mounted arrays at Birg and Jungfraujoch, the second of those sitting at 3,462 meters.
The low-altitude systems ran up to 20 degrees Celsius hotter, which accelerated encapsulant breakdown and acetic acid formation and produced localized corrosion. Heat is what kills panels. Cold, steep and high is a good place to be, which is the same physics that makes the 4,872 panels bolted to the face of the Muttsee dam deliver 43 percent of their annual output in the winter half of the year.
Every long-term study lands on the same practical point. The silicon is fine. The box on the wall is not.
Which makes the timing of the current American fight over inverters worth a look. On July 29 the Federal Communications Commission’s Public Safety and Homeland Security Bureau added foreign-produced power inverters to its Covered List, on national security grounds.
The scope is narrower than the headlines suggest, and worth stating precisely. It applies to prospective equipment authorizations for new device models, not to hardware already holding an FCC grant, which can still be imported, sold and installed.
It targets networked inverters with remote communications or firmware update capability, and equipment with no remote control features falls outside it. There is a conditional approval route through Homeland Security and the Pentagon for manufacturers willing to open their supply chains and move assembly onshore.
It still leaves a hole. Department of Energy figures put domestic manufacturers at roughly 7 percent of the US inverter market. The determination rests on the risk of remote firmware pushes rather than physical tampering, after a DOE analysis in January inspected 30 Chinese inverters and found no definitive evidence of hidden devices.
Set that against a Swiss roof that has burned through five inverters while the panels underneath never moved, and the priorities look a little strange. The component the US is now rationing is the one with a documented habit of dying first.
The warranty question is having a moment in the research too. A paper published this year in the International Journal of Energy Research argues the industry keeps inferring module lifespan from manufacturer warranties, and that this distorts the picture, because panels get pulled for economic reasons long before they stop working.
The warranty is a commercial instrument. It was never a measurement.
There is a smaller irony underneath all of this. The US lab whose fleet data everyone cites for degradation rates, which puts the median real-world loss at 0.75 percent a year, was renamed in December 2025. The National Renewable Energy Laboratory is now the National Laboratory of the Rockies, with “renewable” taken out of the title. The datasets did not change.
Switzerland, meanwhile, keeps running the long experiments. Panels on a dam face, panels locked between the rails of a working railway line that 11,000 trains have now rolled over, and a 1982 array nobody ever got around to switching off.
None of it tells you which group your own panels are in. The decision that mattered at Trevano was made by a purchasing manager picking an encapsulant supplier before the pallet ever shipped, and nobody prints that on the frame. The recycling plants now going up in Georgia exist because plenty of panels do not make it.
What you can check is the inverter. On the evidence of one Swiss roof, that is the part you will buy four or five times before the panels ever give up on you.
Agree or laugh out loud?
Luis Reyes · Aug 2, 2026
Luis Reyes · Aug 7, 2026
Luis Reyes · Aug 4, 2026
Olivia Richman · Jul 31, 2026
Luis Reyes · Jul 22, 2026
Luis Reyes · Aug 6, 2026
Luis Reyes · Aug 11, 2026
Luis Reyes · Aug 11, 2026
Luis Reyes · Aug 11, 2026
Luis Reyes · Aug 11, 2026
Luis Reyes · Aug 11, 2026
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dGEN Energy Partners and Grainger complete major solar project at Louisville Distribution Center – lanereport.com


Louisville, KY – dGEN Energy Partners and Grainger have completed a major solar energy project at the Louisville Distribution Center, delivering a system designed to significantly reduce the facility’s reliance on utility power while strengthening its long-term energy performance and environmental impact.
Through its relationship with Grainger, dGEN evaluated the distribution center’s energy use, rooftop capacity, system requirements, available incentives, and long-term performance needs.  That work led to the development and completion of a 6.426-megawatt DC solar system at the facility, consisting of approximately 11,900 solar panels and 17 inverters.
The system was designed to generate approximately 8.5 million kilowatt-hours of solar energy annually, supplying an estimated 92 percent of the distribution center’s annual electricity needs.
“This project is a strong example of what can happen when the right partnership is built around the real needs of the customer,” said Walt Jordan, Chief Revenue Officer at dGEN Energy Partners.“Grainger helped create the opportunity, and our team developed and delivered an energy solution
designed specifically for the Louisville Distribution Center.”
The completed system was designed to reduce the facility’s annual utility purchases to approximately 727,000 kilowatt-hours, giving the Louisville Distribution Center greater control over its energy use and supporting a more resilient operating strategy.
dGEN approached the project as a long-term infrastructure initiative, bringing together facility evaluation, engineering, system design, project development, and implementation into one coordinated plan.
“This was never just about putting panels on a roof,” Jordan said. “It was about understanding the facility’s energy use, infrastructure, operational needs, and long-term goals, then bringing all of those pieces together into one workable project.”
The Louisville Distribution Center project also reflects the complementary strengths of the dGEN and Grainger relationship.
Grainger brings trusted relationships with commercial and industrial customers and a strong understanding of facility needs. dGEN brings the technical and project-development experience required to evaluate opportunities, structure solutions, and carry projects through implementation.
Together, the companies were able to move the Louisville project from initial evaluation to completed installation. The project is also expected to deliver a significant environmental benefit. The original analysis projected that the system would reduce approximately 168,619 tons of carbon emissions over 30 years, an impact comparable to removing more than 455 million vehicle miles from the road.
For the Louisville Distribution Center, the result is more than a solar installation. It is a long-term infrastructure asset designed to improve energy performance, strengthen operational resilience, and provide greater control over one of the facility’s most important resources.
For dGEN and Grainger, the project demonstrates what is possible when strong customer relationships are matched with the experience needed to design and deliver complex energy improvements.
About dGEN Energy Partners
dGEN Energy Partners develops and delivers customized commercial and industrial energy solutions designed to improve resilience, strengthen long-term facility performance, and support smarter infrastructure planning. As Grainger’s exclusive solar services provider, dGEN helps customers evaluate, develop, and build solar projects on rooftops, parking areas, and available land.

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Renewable Energy Update 8.10.26 – JD Supra

Renewable Energy Update 8.10.26  JD Supra
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First non-industrial zoned solar farms could be coming to Quincy – WFSB

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Australia's Allume Energy brings updated shared solar offer to UK – solarpowerportal.co.uk

SolShare 2, due to be available in the UK from August, can support up to 30kW capacity, an increase from the flagship 20kW product.
June 16, 2026
Allume Energy has redesigned its shared solar PV technology that enables a single rooftop installation to connect to multiple properties.
The Melbourne, Australia-headquartered company aims to tackle ownership and technical barriers to solar adoption for shared dwellings like apartments and social housing.
SolShare 2, due to be available in the UK from August, can support up to 30kW capacity, an increase from the flagship 20kW product. It can support up to 15 connections. The rooftop solar array is intended for installation on flat blocks, enabling residents from multiple flats to access the solar generation.
SolShare 1 has been available in the UK since 2021, and in June last year Allume received a £4 million strategic investment from E.ON UK.
Alongside the increased capacity of SolShare 2, Allume has made battery energy storage system (BESS) integration with the system more straightforward. A communal BESS stored in or near flats with the rooftop array pairs with the SolShare 2 system via an Ethernet connection.
Related:Mitie and Revera break ground on 200MW/400MWh Scotland BESS
The system, which is PV and supplier-agnostic, also allows residents to discharge to the grid, with grid-charging to follow.
According to Cameron Knox, CEO and co-founder of Allume Energy, compliance and regulations in the UK had made it “all but impossible” to install integrated solar and BESS at flats, “but SolShare 2 changes that.”
This comes as the UK government is gathering evidence on how to enable shared battery storage to be rolled out across the UK. A federal government subsidy scheme in Australia demonstrates how the UK government might hope to intervene to establish a network of community batteries in the UK.
The call for evidence will gather views on how to scale up deployment, remove regulatory and commercial barriers, ensure safety, and make sure the benefits reach those unable to install private domestic energy storage, like renters and people living in flats.
It cites Allume’s 2023 BESS installation at its SolShare 1 array on a Cardiff flat block, which the company says has seen grid energy demand drop 60-70%.
Read more about:
Molly Green
Section Editor, Informa
Molly joined the team in 2024 and has led coverage on the UK sites. Now shifting to a more global view, Molly is interested in how legislation shapes market dynamics, covering the intersection of policy design, investment patterns, and energy transition pathways.
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Copyright © 2026 Informa PLC. Informa PLC is registered in England and Wales with company number 8860726 whose registered and head office is 5 Howick Place, London, SW1P 1WG.

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U.S. solar trade barriers could boost Hanwha Solutions – upi.com


Aug. 11 (Asia Today) — New U.S. minimum import prices and tariffs on imported solar products are expected to improve the competitive position of Hanwha Solutions, which has invested heavily in building a vertically integrated solar manufacturing supply chain in the United States.

President Donald Trump signed a proclamation Thursday under Section 232 of the Trade Expansion Act introducing minimum import prices for polysilicon and related solar products.

The minimum price was set at $21 per kilogram for polysilicon, $100 for ingots and wafers, 22 cents per watt for solar cells and 38 cents per watt for modules.

Tariffs will also apply to ingots, wafers, cells and modules.

The new measures are scheduled to take effect Dec. 4.

The average U.S. import price for solar modules is currently about 27 cents per watt, while modules manufactured in the United States average about 31 cents, both below the new minimum import price.

Market analysts estimate that U.S. module prices could rise 20% to 30% after the measures take effect.

That could benefit Hanwha Solutions.

Its solar unit, Hanwha Qcells, announced a $2.5 billion investment in 2023 to develop a U.S. “Solar Hub” linking its operations in Dalton and Cartersville, Ga.

The Cartersville facility is designed for annual production capacity of 3.3 gigawatts each for ingots, wafers and cells.

Combined module production capacity at Dalton and Cartersville is about 8.6 gigawatts a year.

The company’s ability to manufacture ingots and wafers domestically is particularly significant because U.S. production capacity remains relatively limited in those upstream parts of the solar supply chain.

Washington is also using the Section 232 measures to encourage additional domestic solar manufacturing capacity, increasing the potential value of Hanwha’s existing U.S. production base.

Hanwha still faces some tariff exposure.

U.S. solar cell production capacity remains smaller than domestic module capacity, meaning Hanwha must import some cells produced in South Korea and Malaysia to fully operate its U.S. module lines.

Those imports could face additional tariffs.

Analysts, however, expect higher module selling prices to absorb much of the increased cost of intermediate materials, improving overall profitability.

Expectations are already being reflected in earnings forecasts.

NH Investment & Securities raised its estimate for Hanwha Solutions’ 2027 operating profit by 16.9% to 1.316 trillion won, or about $928 million.

That would represent a 48.7% increase from the firm’s projected 2026 operating profit of 885 billion won, or about $624 million.

Cho Jae-won, an analyst at Kiwoom Securities, said South Korean companies had continued making early investments in the U.S. market despite uncertainty surrounding policy.

As a result, he said, Hanwha Solutions has established itself as one of a limited number of competitive non-Chinese suppliers.

— Reported by Asia Today; translated by UPI

© Asia Today. Unauthorized reproduction or redistribution prohibited.

Original Korean report: https://www.asiatoday.co.kr/kn/view.php?key=20260811010003651

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Aug. 11 (Asia Today) — New U.S. minimum import prices and tariffs on imported solar products are expected to improve the competitive position of Hanwha Solutions, which has invested heavily in building a vertically integrated solar manufacturing supply chain in the United States.
President Donald Trump signed a proclamation Thursday under Section 232 of the Trade Expansion Act introducing minimum import prices for polysilicon and related solar products.

The minimum price was set at $21 per kilogram for polysilicon, $100 for ingots and wafers, 22 cents per watt for solar cells and 38 cents per watt for modules.
Tariffs will also apply to ingots, wafers, cells and modules.
The new measures are scheduled to take effect Dec. 4.

The average U.S. import price for solar modules is currently about 27 cents per watt, while modules manufactured in the United States average about 31 cents, both below the new minimum import price.
Market analysts estimate that U.S. module prices could rise 20% to 30% after the measures take effect.
That could benefit Hanwha Solutions.
Its solar unit, Hanwha Qcells, announced a $2.5 billion investment in 2023 to develop a U.S. “Solar Hub” linking its operations in Dalton and Cartersville, Ga.

The Cartersville facility is designed for annual production capacity of 3.3 gigawatts each for ingots, wafers and cells.
Combined module production capacity at Dalton and Cartersville is about 8.6 gigawatts a year.
The company’s ability to manufacture ingots and wafers domestically is particularly significant because U.S. production capacity remains relatively limited in those upstream parts of the solar supply chain.
Washington is also using the Section 232 measures to encourage additional domestic solar manufacturing capacity, increasing the potential value of Hanwha’s existing U.S. production base.
Hanwha still faces some tariff exposure.
U.S. solar cell production capacity remains smaller than domestic module capacity, meaning Hanwha must import some cells produced in South Korea and Malaysia to fully operate its U.S. module lines.
Those imports could face additional tariffs.
Analysts, however, expect higher module selling prices to absorb much of the increased cost of intermediate materials, improving overall profitability.
Expectations are already being reflected in earnings forecasts.
NH Investment & Securities raised its estimate for Hanwha Solutions’ 2027 operating profit by 16.9% to 1.316 trillion won, or about $928 million.
That would represent a 48.7% increase from the firm’s projected 2026 operating profit of 885 billion won, or about $624 million.
Cho Jae-won, an analyst at Kiwoom Securities, said South Korean companies had continued making early investments in the U.S. market despite uncertainty surrounding policy.

As a result, he said, Hanwha Solutions has established itself as one of a limited number of competitive non-Chinese suppliers.
— Reported by Asia Today; translated by UPI
© Asia Today. Unauthorized reproduction or redistribution prohibited.
Original Korean report: https://www.asiatoday.co.kr/kn/view.php?key=20260811010003651

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Sussex County Council approves solar array on family farmland near Millsboro – coasttv.com

A few passing clouds, otherwise generally clear. Low near 70F. Winds light and variable..
A few passing clouds, otherwise generally clear. Low near 70F. Winds light and variable.
Updated: August 11, 2026 @ 11:48 pm
Sussex County Council approved the application following a public hearing and after adopting an amendment reducing the amount of time privacy screening must remain on the project’s perimeter fencing from 10 years to five years.

Managing Editor, Broadcast Journalist

Brandon started at CoastTV News in June 2024, anchoring the weekend newscasts for more than a year and reporting during the week. In May 2026, Brandon transitioned into the managing editor and 11 p.m. anchor positions.
Sussex County Council approved a conditional-use application Tuesday allowing Pivot Energy DEL045, LLC to move forward with plans for a solar project on a 45-acre property near Millsboro. The property is located along Norwood Lane, about 950 feet southwest of Oak Orchard Road. The solar arra…
MILLSBORO, Del. – Sussex County Council approved a conditional-use application Tuesday allowing Pivot Energy DEL045, LLC to move forward with plans for a solar project on a 45-acre property near Millsboro. The property is located along Norwood Lane, about 950 feet southwest of Oak Orchard Road. The solar array itself would occupy just over 15 acres of the property, with the remainder continuing to be available for agricultural use.
Sussex County Council approved the application following a public hearing and after adopting an amendment reducing the amount of time privacy screening must remain on the project’s perimeter fencing from 10 years to five years.
Sussex County Council approved the application following a public hearing and after adopting an amendment reducing the amount of time privacy screening must remain on the project’s perimeter fencing from 10 years to five years.
The project includes a 30-foot-wide landscaped buffer around the perimeter, with a mix of 70% evergreen and 30% deciduous vegetation. A seven-foot-tall fence with privacy screening is also planned around the array.
Property owner Elgin Johnson told council the land has been in his family for generations and has historically been used for agriculture. Johnson said he does not intend to sell the property and views the solar project as a way to generate income while preserving the land for future generations. Representatives for the applicant said the project would operate under a 25-year lease and could eventually be returned to farmland. 
At a July 15 Sussex County Planning and Zoning Commission hearing, Patriots Glen resident Tracy Johnson spoke in opposition to the project. Johnson said the proposed 30-foot buffer of trees and shrubs would not provide enough screening and argued the neighboring community could look more like an industrial area than a residential neighborhood. She also told commissioners she had created a petition opposing the project that had 172 signatures.
Pivot Energy says the project still needs to go through agency approvals following the county’s approval. Council members voted in favor of the application as amended, citing the recommendation from the Sussex County Planning and Zoning Commission and testimony presented during the hearing.
Managing Editor, Broadcast Journalist

Brandon started at CoastTV News in June 2024, anchoring the weekend newscasts for more than a year and reporting during the week. In May 2026, Brandon transitioned into the managing editor and 11 p.m. anchor positions.
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Jay Select Board hears opposition to what could become the largest solar farm in Maine – The Maine Monitor

Jay Select Board hears opposition to what could become the largest solar farm in Maine  The Maine Monitor
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The British Solar Startup Being Courted by Both China and the U.S. – wsj.com

The British Solar Startup Being Courted by Both China and the U.S.  wsj.com
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How Many Solar Panels Would It Take To Replace One Coal Power Plant? – AOL.com

How Many Solar Panels Would It Take To Replace One Coal Power Plant?  AOL.com
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Manitoulin East solar farm reaches first stage – The Manitoulin Expositor

Manitoulin East Airport signed a 30-year lease for a 110-acre solar farm by Compass Greenfield. Generating 19 MW annually, it will fund airport operations and reduce taxes.
MANITOULIN EAST—On July 21, the Manitoulin East Airport Commission signed a lease agreement for 110 acres of property at the Manitoulin East Municipal Airport for a solar farm, marking the first hurdle for the project’s proponents.
When the solar farm is fully functional, it is expected to produce 19 MW of power annually for the Ontario grid.
Manitoulin East Airport Commissioner George Williamson, who is also a member of the Northeast Town council, explained the province is looking to increase its power grid infrastructure, including of the green variety, so this project is a nice fit with provincial directives. He shared with The Expositor the statistic that this past Friday, August 7, Ontarians were using approximately 16,690 MW continuously which works out to about 146.2 terawatt hours of total Ontario electricity demand this year, according to the Independent Electricity System Operator (IESO), the same group that will oversee this project.
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Manitoulin Island local news.

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Trump to Impose 15% Tariff, Set Minimum Prices on Solar Panels and Components – wsj.com

Trump to Impose 15% Tariff, Set Minimum Prices on Solar Panels and Components  wsj.com
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