Canada-based solar panel maker Heliene is poised to add U.S.-sourced solar glass to its products manufactured south of the 49th Parallel. Martin Pochtaruk, CEO of Heliene, told pv magazine USA that it is receiving the first commercial shipments from Stewart Glass’ new production facilities in Ohio. The output will feed Heliene’s U.S. module factories in Minnesota. Heliene has invested resources and research in Stewart’s effort to become a U.S. manufacturer of solar glass. According to Pochtaruk, the effort is a key aspect of the company’s strategy of establishing U.S.-source solar panels for the practical purpose of enabling developers and owners to meet domestic content requirements and avoid foreign entities of concern (FEOC) in order to make solar projects economically viable. Heliene offers customers a “drop down” menu approach to solar components so developers can pick and choose how much domestic content they need to move forward. “Domestic content is percentages,” Pochtaruk said. The company could offer a client a module build outside the U.S.: zero domestic content. On the other side, Heliene could produce the same module with everything made in the U.S. except the glass because it wasn’t available. The partnership with Stewart Glass is changing that equation. Pochtaruk said Stewart Glass approached Heliene a year ago with its plans to produce solar glass in the U.S. The Ohio facility it acquired had been making architectural glass and has since been converted to making laminated solar glass with the low iron content and high light transmission suitable for quality solar modules. Rather than simply waiting for the glass to roll, Heliene is invested in the startup process. “When we engage with makers of U.S. wafers, for instance, they require a contract for a period of time at a minimum volume,” he said. “So, we have done the same with Stewart Glass. We have commitments to buy an annual volume from them going forward. And that means making prepayments: sending money and then being part of their startup.” Glassmakers have to do a lot of groundwork to ensure that they will have pipelines of raw materials, customers for the finished product and a process that produces glass of high quality and low impurities before firing up the furnace. In April 2025, Stewart Glass, a maker of primarily automotive glass based in Michigan, acquired a facility in Ohio to begin produce solar glass and opened its first line in March 2026 that is capable of producing 150 tons per day. The company says it plans to open up a second production line in June 2027 with a projected output of 250 tons per day. Pochtaruk points out that glassmaking is akin to steelmaking in that a manufacturer can’t let the furnaces go out without essentially destroying them. In the case of steel, countries turning to less energy intensive methods of steelmaking, principally using scrap in electric furnaces, risk making traditional blast furnaces capable of smelting steel from ore obsolete. This is fine as long as you have a supply of scrap. However, bricking the blast furnaces and losing the ability to produce steel from ore has strategic consequences. The point is that glassmaking plants are not casually built. Not all glass is created equal. Heliene specifies 3.2 mm glass for its products, which Pochtaruk says has the right mix of lightness, transmissibility, durability and hail resistance. Stewart has committed to this format. In addition, the company has been testing early runs of glass for PV properties and structural integrity using its extensive research and development capabilities. Heliene engineers and technicians are on-site at Stewart’s Ohio facility as it stands up operations. That being said, while Heliene is counting on Stewart Glass output for its products, Pochtaruk readily admits that his company can’t possibly absorb 100% of its output. Other module makers will inevitably queue up for U.S. solar glass. This is even desirable as higher output and economic success means lower cost all around. “In the current environment, solar project financeability is now more front and center than ever,” he said. “Manufacturing in the U.S. is one way to achieve some of that financeability. Glass is an important part of solar manufacturing.” 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]. Comments Please login to comment The new issue of pv magazine Global is out now! Available in print and digital – get your copy today! Monday, October 26, 2026 10:30 am – 11:30 am CEST, Berlin, Paris, Madrid A two-day conference in Austin, Texas, bringing together leaders in US solar manufacturing, equipment specification, and factory execution. Thursday, October 7, 2026 11:00 am – 12:30 pm CEST, Berlin, Paris, Madrid pv magazine USA hosts its multi-day virtual event on U.S. solar and energy storage, covering domestic manufacturing, distributed energy and the growing role of solar-plus-storage in meeting AI-driven power demand.
US renewable energy developer NorthStar Clean Energy has completed construction of a 120MW solar PV project in Oceana County, Michigan. The Hart Solar Project is expected to generate 200GWh of power annually and is backed by long-term power purchase agreements (PPAs) with Executive Energy Services and Michigan Public Power Agency (MPPA). NorthStar said it will host a ribbon-cutting ceremony for the project next month. Get Premium Subscription “Hart Solar is an important investment in Michigan’s energy future and demonstrates how strong partnerships can help deliver clean energy solutions to communities across our state,” said Brian Hartmann, president and CEO of NorthStar Clean Energy. “Through joint action, public power communities of all sizes can share in the economies of scale needed to make utility-scale renewable projects like Hart Solar a practical, long-term resource for the customers and communities they serve,” said Patrick Bowland, CEO & general manager at MPPA, a joint action agency for energy projects and supply. NorthStar Clean Energy already has utility-scale solar projects under development in Michigan. In March 2025 it secured US$334 million for two projects in the state, the 200MW Branch solar project in Branch County, Michigan, and the 50MW Genesee Solar project in Genesee County. Earlier this year, the state utility DTE Energy issued a public tender seeking 1GW of new solar PV and wind power capacity across the state; in line with the company’s integrated resource plan and commitments to phase out coal use in the state, the projects must be operational by 2029. Elsewhere in Michigan, utility Consumers Energy began operations on the 250MW Muskegon PV plant, and Linea Energy finalised project financing for the 172MW Watertown solar PV project in Sanilac County.
Schematic illustration showing how underwater solar cells could supply clean energy to marine monitoring, communication and exploration equipment. Graphic: Courtesy of Yunnan University China’s installed photovoltaic power generating capacity surpassed that of coal power for the first time, becoming the country’s … The first phase of the Huaneng Nagu Photovoltaic Power Station, the world’s highest-altitude solar power project, was officially … A total of 5,000 solar panels were put into use at an expressway section linking Southwest China’s Sichuan …
The New South Wales (NSW) government has launched consultation on a proposal to introduce Australia’s first mandatory solar panel recycling scheme, aiming to ensure valuable solar panel materials are recovered, reused and recycled rather than being dumped. Intended to divert thousands of tonnes of solar panel waste from landfill, the proposed product stewardship scheme would require solar manufacturers and importers supplying regulated PV panels into NSW to help fund collection, recycling and resource recovery across the state. Government data shows NSW is home to more than 1.18 million rooftop solar systems and as they age, and as households increasingly upgrade to higher efficiency panels, waste volumes of PV panels are projected to increase sharply over the next two decades. About 14,000 tonnes of solar panel waste is generated in the state each year, and that figure is forecast to rise to 89,000 tonnes by 2045. “Current disposal pathways are insufficient to safely and sustainably manage this growing waste stream,” the NSW Environment Protection Agency said in its consultation paper. “Most end-of-life PV panels continue to be landfilled, stockpiled or illegally dumped.” NSW Energy Minister Penny Sharpe said the proposed regulation is not simply about reducing waste, but is also about capturing valuable resources and creating new economic opportunities. “NSW has embraced rooftop solar, and now we’re making sure those panels don’t become tomorrow’s landfill problem,” she said. “Solar panels contain valuable materials that can be recovered and put back to work.” “A mandatory product stewardship scheme can help build a circular economy for solar panels, while supporting new recycling and manufacturing opportunities here in NSW.” Smart Energy Council (SEC) Chief Executive David McElrea said the proposed legislation provides a strong foundation for a circular economy but cautioned that state-level initiatives must be matched by a unified national framework led by the federal government. “Ideally, states and territories won’t have to go it alone, because solar supply chains do not end at a border,” he said, adding that a patchwork of rules will be more inefficient and costly for consumers, business, industry and authorities. “NSW is showing leadership, but unless transitioned into a Commonwealth scheme, over 70% of Australia’s decommissioned solar panels will remain uncaptured outside NSW,” he said. “The federal government has to step up and deliver a national product stewardship framework to provide the scale, consistency, and certainty Australia needs.” In addition to publishing the opening consultation on the draft regulation, the NSW government has released an issues paper seeking feedback on how the state can support the growth of solar panel recycling, remanufacturing and manufacturing industries. Submissions on the draft regulation and issues paper are open until 16 November. 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]. 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]. Comments Please login to comment The new ESS News magazine is here! Download your free digital copy today. The new issue of pv magazine Global is out now! Available in print and digital – get your copy today! Martedì, 22 Settembre 2026 11:00 – 12:00 CEST, Roma 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. pv magazine USA hosts its multi-day virtual event on U.S. solar and energy storage, covering domestic manufacturing, distributed energy and the growing role of solar-plus-storage in meeting AI-driven power demand. Monday, October 26, 2026 10:30 am – 11:30 am CEST, Berlin, Paris, Madrid Giovedì, 1 ottobre 2026 14:30 – 15:30 CEST, Roma
Megan Hall: Welcome to Possibly. Where we take on huge problems, like the future of our planet, and break them down into small questions with unexpected answers. I’m Megan Hall. Solar panels can help you power your home with renewable energy and save money on your electric bill. But they can be expensive, and take a while to set up. Today, Juliana Merullo from our Possibly team is here to tell us about another option– plug-in solar panels. Juliana Merullo: Hiya Megan! Megan Hall: So what exactly is plug-in solar? Juliana Merullo: Plug-in solar, which is also called balcony solar, is just what it sounds like. You plug solar panels into a small inverter, which then gets plugged into an outlet in your house. Instead of using electricity like most things you plug into the wall, this system generates it! Megan Hall: Do these panels really work? Juliana Merullo: They do! They’re a lot smaller than a conventional rooftop solar system, so they don’t generate as much electricity. It’s not going to power your whole home or apartment, but an average sized system that gets good sunlight during the day could power your refrigerator and save you over a hundred dollars a year on electricity costs. Megan Hall: Ok, but that’s not that much. Why are people so excited about these? Juliana Merullo: Well for one thing, plug-in solar panels are a lot cheaper than regular rooftop solar. And they’re a lot easier and faster to set up. Ben Paulos, a researcher with the Clean Energy States Alliance, says that on top of that, Ben Paulos: A number of people can’t really do rooftop solar. They don’t own the roof. You know, if you are a renter, or if you live in an apartment building…a portable kit that you can move with you when you move one apartment to another is a good idea. Megan Hall: That makes sense. But is it actually safe to just plug these panels into the wall? Juliana Merullo: Yeah, it is! Most of the safety concerns get figured out between the manufacturer and the testing labs that certify the panels. Keep an eye out for UL labels, which mean your panel and inverter have been tested and certified as safe. Then, Ben says you just want to be careful where you plug them in. Ben Paulos: You really don’t want to plug in your solar system into a circuit that’s already very busy and very crowded, like kitchens tend to use a lot of electricity, so you may not want to plug it into your kitchen. Juliana Merullo: When he bought plug-in panels for his home, he plugged them into the garage. Ben Paulos: I bought some used panels on Facebook Marketplace. And then my son hoisted those panels up to me on my garage roof and I plugged it in. Megan Hall: So I can just go out and buy them? Why don’t more people have them? Juliana Merullo: It depends where you live! In Germany you can find them at IKEA, and almost a million of them have been installed. In the US, it’s just starting to gain traction. It’s not technically illegal anywhere, and you can find the panels online. But only 9 states have laws that officially allow it. To make sure you don’t get in trouble with your utility company, it’s smart to wait until your state has passed a bill allowing it. Ben Paulos: If you’re in one of the states that has passed legislation, then you’re probably going to be good to go as soon as that takes effect. If you’re not, then maybe you want to call your state legislature and ask them when it’s going to happen. Megan Hall: What about here in Rhode Island? Juliana Merullo: Well just this year, State Representative June Speakmanintroduced a bill that would allow Rhode Islanders to use plug-in solar without needing the utility company’s approval. June Speakman: This was one of the most popular pieces of legislation that I had ever introduced, this was a love fest. Everyone thinks these are fabulous, I mean, I was getting emails. Please make sure this passes. Please make sure this passes. Juliana Merullo: It passed unanimously in the House, but got held up in the Senate. June is going to re-introduce it next session and she thinks it has a good chance of becoming law. Megan Hall: So if it does, should I go out and buy plug-in panels for my house? Juliana Merullo: Yes! The impact of these panels might be small, but they still make a difference: June Speakman: You know some people describe it as a feel good bill. Sure, makes me feel good, but it also does those two things, right? It brings us a little bit more into a cleaner, greener future, and it does bring costs down. Juliana Merullo: There are over 20 other states like Rhode Island that are considering plug-in solar bills. So we’ll have to keep an eye out for more of these systems to be popping up all over the country! Megan Hall: Great! Thanks Juliana. That’s it for today. For more information, or to ask a question about the way your choices affect our planet go to askpossibly.org. You can also subscribe to Possibly wherever you get your podcasts or follow us on social media at “ask possibly” Possibly is a co-production of Brown University’s Institute for Environment and Society, Ocean State Media and WBRU.
Vertically integrated PV manufacturer LONGi, which has entered the energy storage sector recently, has signed an energy storage cooperation agreement with Shanxi Dingxin Logistics. Under the agreement, it will supply a LONGiBank liquid-cooled energy storage system (ESS) for the logistics company’s heavy-truck charging station in Yuncheng, Shanxi province. LONGi describes the facility as the largest heavy-truck charging station in Shanxi, with daily electricity consumption of around 150,000 kWh. A 3.2 MW rooftop distributed PV system at the site was connected to the grid at the end of 2025, using LONGi Hi-MO X10 modules and providing estimated average annual generation of approximately 4 million kWh. With the addition of the storage system and LONGi One OS energy management system, the site will integrate PV generation, energy storage and heavy-truck charging under a unified dispatch system. The storage system will absorb surplus midday solar generation, support time-of-use electricity price arbitrage and reduce grid impacts from high-power heavy-truck charging. Huawei Digital Power’s SUN2000-506KTL-H1 smart string inverter has obtained certification under Germany’s VDE-AR-N 4110, 4120 and 4130 grid-connection standards, covering medium-, high- and extra-high-voltage networks, respectively. Huawei said it is the world’s first 500 kW-class smart string inverter to obtain all three certifications. The inverter has a maximum efficiency of 99.1% and European efficiency of 98.8%. Its grid-forming capabilities include active transient overvoltage suppression, inertia response and wideband oscillation damping. The inverter series has also received a Grid-Forming Unit Certificate from TÜV SÜD based on the VDE FNN Guideline Version 2.1:2026, supporting grid stability in systems with high renewable penetration and weak-grid conditions. Midea New Energy, the renewable energy business of Chinese appliance manufacturer Midea Group, has launched a 5.5 MW centralized aggregation PV demonstration project in Donglu Village, Zhangzhuang Township, Pei County, Xuzhou, Jiangsu province. According to the company, the project uses a clustered residential rooftop PV development model, installing distributed PV systems on local households’ roofs and aggregating their output for centralized grid connection. China’s Ministry of Industry and Information Technology, National Development and Reform Commission and National Energy Administration, together with two other government departments, have launched applications for the 2026 national green computing facility program. The program will select facilities with high energy and carbon efficiency, low-carbon operations, appropriate siting, advanced technologies and sound management. It covers computing facilities in sectors including industry, information and communications, energy, the internet, finance and public institutions. The share of electricity consumption supplied by wind, solar and other renewable energy sources must be no lower than the renewable electricity consumption responsibility weighting applicable to the province, autonomous region or municipality where the facility is located. The authorities will also encourage new computing facilities to be planned and deployed in coordination with renewable power generation, provided they have stable supporting power supplies and flexible regulation capabilities, with the aim of improving the alignment between electricity demand and renewable generation. TaiyangNews 2024
Morocco’s Noor Ouarzazate complex, built at a cost of $3 billion a decade ago, reaches nearly 600 megawatts of capacity. Morocco is home to one of the world’s largest solar energy complexes. Noor Ouarzazate is a vast facility built by Saudi company ACWA Power in one of the country’s sunniest regions. A decade after it began operating, the complex has just under 600 megawatts (MW) of installed capacity and can meet the electricity needs of more than one million people, according to World Bank figures. The project, which required more than $3 billion in international financing, began operating in 2016 and became one of Morocco’s flagship initiatives in its drive to increase renewable energy production. However, Noor has one feature that sets it apart from a conventional solar farm. Part of the complex can store heat captured during the day and use it later to continue generating electricity after the sun has gone down. The complex is not a single power plant but consists of four separate facilities. Noor I, which began operating in 2016, has a capacity of 160 MW and uses parabolic trough collectors. It was subsequently joined by Noor II, with 200 MW; Noor III, which produces 150 MW using solar tower technology; and Noor IV, a 70 MW photovoltaic facility. Together, the four plants have a total installed capacity of 580 MW. The most striking sight at the complex is Noor III. Its distinctive tower stands approximately 800 feet tall and is surrounded by thousands of heliostats, mirrors that track the position of the sun and concentrate its rays onto a receiver at the top of the structure. The resulting heat is stored in molten salts and later used to produce steam, drive a turbine and generate electricity. This technology helps overcome one of the main limitations of conventional solar power, since electricity production does not have to stop as soon as the sunlight disappears. Noor III has around seven hours of thermal energy storage, while Noor I and Noor II also have storage systems that allow some electricity generation to be shifted beyond daylight hours. Morocco has abundant solar and wind resources but lacks significant oil and gas reserves of its own. When development of the project began, Morocco relied on imports for approximately 95% of its primary energy needs, leaving the country highly exposed to fluctuations in international fuel prices. Morocco’s energy strategy has sought to capitalize on the country’s geographic advantages to reduce that dependence. Renewable sources currently account for around 44% of Morocco’s installed electricity-generating capacity, according to the country’s Ministry of Energy Transition, which has maintained an official target of surpassing 52% by 2030. Get closer to the game! Whether you like your soccer of the European variety or that on this side of the pond, our AS USA app has it all. Dive into live coverage, expert insights, breaking news, exclusive videos, and more. Plus, stay updated on NFL, NBA and all other big sports stories as well as the latest in current affairs and entertainment. Download now for all-access coverage, right at your fingertips – anytime, anywhere. And there’s more: check out our TikTok and Instagram reels for bite-sized visual takes on all the biggest soccer news and insights. Complete your personal details to comment
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0 Powered by : Zelestra, a global renewable energy developer, has started construction on its 38.5 MWdc Detershagen solar project in Rostock, Mecklenburg-Vorpommern, Germany. It is the company’s second solar project to enter construction in Germany, following the recently energised 27.5 MWdc Klevenow plant. Secured through Germany’s EEG tenders, Detershagen will feature approximately 62,000 solar panels. The plant is expected to generate 40,200 MWh annually and avoid approximately 13,300 tonnes of CO₂ emissions per year. Construction is expected to support around 55 jobs, with commercial operation anticipated by Q2 2027. Zelestra is also advancing a German development pipeline exceeding 2 GW across solar, hybrid, BESS and wind projects. SOLARbytes brings you the latest news in solar world in bite size; essentially a gist of important solar news in few sentences. Subscribe to our Newsletter!
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Premier Energies commissioned a large solar cell manufacturing facility in Andhra Pradesh. This new plant significantly boosts the company’s total solar cell production capacity. The facility is India’s largest solar cell manufacturing plant and was completed on schedule. It aims to meet rising demand for high-efficiency solar modules in domestic and international markets. This expansion supports India’s broader clean-energy transition goals. Premier Energies commissioned a large solar cell manufacturing facility in Andhra Pradesh
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Comstock LODE rises 4.7% in Tuesday's trading after saying its solar panel recycling production system is now operating continuously at its Silver Springs, Nevada, facility. Comstock LODE said the Silver Springs facility processes end-of-life solar panels using what the company describes as a zero-landfill recycling approach, and will now be ramped up to meet increasingly higher customer volume demands. The facility's transition to continuous production will eliminate disposal-related environmental liabilities for utility-scale solar customers and provide them with certified, audit-ready chain-of-custody documentation validating that their end-of-life regulatory obligations have been fully discharged, the company said. "The successful transition to continuous processing represents the most meaningful operational milestone to date for our expanding recycling platform," Comstock LODE CEO Corrado De Gasperis said. "We have methodically developed, deployed, tested and are now continuously operating… With demonstrable continuous production, our focus now turns to volume ramp."
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Speaking in the first session of the morning, Koen Kok of Technical University Eindhoven pointed out that the Netherlands, this year’s EUPVSEC host country, has the highest per capita PV capacity in Europe (and the second highest in the world), and that with this come the growing challenges of grid congestion and PV curtailment. Many would expect this key conference for solar researchers and industry professionals to maintain its focus inward on cell technology, system performance and other topics inherent to solar energy. But the topics chosen for the opening sessions and the program for the rest of the week-long conference at Rotterdam’s World Trade Center point to a much broader focus reflecting an industry recognizing that many of solar’s biggest challenges today come down to its rapid growth encroaching on other sectors, and focusing on the need to carefully manage these many interfaces. Koen Kok of TU Eindhoven set the scene early on the first morning, discussing congestion and overvoltage events on the Netherlands grid, and their relationship to peak solar generation period. The discussion carried on in this vein later in the morning, with TU Delft’s Peter Palensky describing the inherent unreliability of electricity systems. He noted that solutions to balancing grids with high levels of variable renewable energy are sometimes hidden within the massive complexity of such systems, and that recent developments with AI and modelling technologies mean we now have the tools to deal with that complexity. He further told the audience that the market alone is not solving grid congestion quickly enough, and that implementing solutions would require a change in the way we look at energy systems, and recognition that “every billion not invested in grids adds to up €10 billion in lost investment.” Accepting the Becquerel Prize for her work on high efficiency and reliable industrial PV technologies, CEA Liten’s Delfina Muñoz spoke of the management of many ‘interfaces’ that working in solar entails – whether between two layers in a solar cell, or between two entirely different industries beginning to work together. She neatly described these interfaces as the place “where competition stops and collaboration begins.” And growth in the number of interfaces was on show throughout the week-long conference. The solar industry’s interfaces with the grid emerged as the most important one right now, but talks on integrating solar’s activities with agriculture, the built environment, recycling and waste disposal, along with the potential for new materials and device designs, and even earning and maintaining trust from the public. In her acceptance speech, Muñoz also told the crowd that she had first turned to AI for some guidance on what to talk about. And AI remained a theme throughout the week, with entire sessions dedicated to its use in operating PV projects – from analyzing masses of inverter data to quickly spot faults, to teaching software how to identify and analyze individual modules in a drone image of a whole project or string. The other side of this is the infrastructure needed to power AI, and solar’s role in that was much discussed. Representatives of Solaris, an EU funded project supporting resource efficiency and sustainability in the solar industry, also brought up the need for better access and management of the huge amounts of data generated by PV inverters, sensors and other applications – which can provide valuable insights, provided it has a suitable framework for anyone to find them. 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]. 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]. Comments Please login to comment The new ESS News magazine is here! Download your free digital copy today. The new issue of pv magazine Global is out now! Available in print and digital – get your copy today! Martedì, 22 Settembre 2026 11:00 – 12:00 CEST, Roma 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. pv magazine USA hosts its multi-day virtual event on U.S. solar and energy storage, covering domestic manufacturing, distributed energy and the growing role of solar-plus-storage in meeting AI-driven power demand. Monday, October 26, 2026 10:30 am – 11:30 am CEST, Berlin, Paris, Madrid Giovedì, 1 ottobre 2026 14:30 – 15:30 CEST, Roma
Kenya’s electricity regulator has formally codified charges for unauthorized solar power exports and confirmed net-metering credit provisions in a statement that takes retroactive legal effect more than a year before its publication date, with no public explanation given for the backdating. Kenya backdated new solar-export rules by more than 14 months, and no one has explained why. The regulator’s changes, reported Sept. 21, are legally in effect retroactive to July 1, 2025 – but neither the government nor local media have said what’s behind the delayed disclosure. The amendment introduces a formal definition of “dumping” – the unauthorized injection of electricity from a customer’s generation system into the Kenya Power and Lighting Co.’s (KPLC) network without company approval or a valid net-metering agreement. Energy dumped into the grid will be billed at the standard base tariff, and the Energy and Petroleum Regulatory Authority (EPRA) or KPLC may pursue further action if the practice damages equipment, according to the notice. The notice also codifies a net-metering export credit of 50% of a customer’s exported electricity, applied as a bill credit before pass-through costs, taxes and levies are calculated on total energy supplied. That rate is not new: it traces to Kenya’s Energy (Net-Metering) Regulations of 2024, which took effect in July of that year. The recent statement formalizes the existing rate within the tariff schedule rather than introducing a cut. Net metering under the amended schedule remains capped at 1 MW of installed capacity per customer, also constrained by each customer’s maximum recorded demand over the prior 12 months. Commercial and industrial (C&I) customers seeking to self-consume solar power above that threshold must pursue separate embedded-generation or open-access arrangements rather than net metering. Formal net-metering approval requires bidirectional metering and EPRA-licensed installation – conditions some industry observers say not all earlier installations meet, though no public estimates exist. EPRA has not issued any enforcement notices or retroactive billing advisories under the new dumping definition. The Kenya Renewable Energy Association and solar installer organizations have also not made any public statement on either change. The change comes as KPLC reported fiscal 2026 revenue up 8.6% to KES 238.24 billion ($1.8 billion) and profit up 2.1% to KES 24.99 billion for the year ended June. Management has cited the tariff structure as limiting revenue growth despite higher sales, though it hasn’t linked that constraint to the net-metering amendment. Separately, the notice sets Kenya’s e-mobility tariff at KES 16 per unit for standard hours and KES 8 off-peak, removing a prior 15,000 kWh monthly cap that had constrained larger EV-charging operators. It gives no rationale for the change. EPRA also confirmed three September pass-through charges – a KES 3.00 fuel energy cost charge, a KES 1.1443 foreign exchange adjustment, and a Water Resource Management Authority levy – adding KES 4.16 per unit to bills. All three are calculated before net-metering credits are applied, magnifying their impact on net-metered customers. The 1 MW ceiling and the underlying net-metering framework aren’t new: EPRA first floated a draft version of the rules in 2022, capping eligible systems at the same 1 MW threshold and targeting roughly 100 MW of initial distributed solar deployment. What’s changed since is the retroactive codification of the export-credit rate and the new “dumping” penalty regime – additions that formalize enforcement around a policy Kenya has been building toward for four years. 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]. 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]. Comments Please login to comment The new ESS News magazine is here! Download your free digital copy today. The new issue of pv magazine Global is out now! Available in print and digital – get your copy today! Martedì, 22 Settembre 2026 11:00 – 12:00 CEST, Roma 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. pv magazine USA hosts its multi-day virtual event on U.S. solar and energy storage, covering domestic manufacturing, distributed energy and the growing role of solar-plus-storage in meeting AI-driven power demand. Monday, October 26, 2026 10:30 am – 11:30 am CEST, Berlin, Paris, Madrid Giovedì, 1 ottobre 2026 14:30 – 15:30 CEST, Roma
Asian Power website works best with Javascript enabled. Please enable your javascript and reload the page. The ₹3,293-crore plant can produce about 88,000 solar cells per hour. Premier Energies has commissioned a 7GW N-type TOPCon G12R solar cell plant in Naidupeta, Andhra Pradesh, raising its total solar cell capacity to 10.6GW. The ₹3,293-crore facility spans 101 acres and can produce about 88,000 solar cells per hour. The plant uses automated production, digital systems and artificial intelligence for process control and performance analysis. It is also equipped with a Zero Liquid Discharge system to recycle and reuse water. The facility can be upgraded to next-generation TOPCon+ technologies. Once fully ramped up, it is expected to achieve average cell efficiency of about 25.8%, the company said. The commissioning expands Premier Energies’ capacity to supply high-efficiency solar products to domestic and international markets. The company also plans to expand backward integration into ingots and wafers. “The timing of this 7 GW capacity addition is therefore significant: as the line stabilises and ramps up, it gives us the scale to serve that demand with greater supply reliability and operating efficiency,” said Chiranjeev Saluja, managing director at Premier Energies Limited. “Together with our planned backward integration into ingots and wafers, this strengthens our strategy of building a fully integrated and globally competitive solar manufacturing platform while supporting India’s clean energy transition.”
In-Depth editor & reporter writing both features and breaking news about ethnics, religions, social issues and environment. Herds of elk graze in the foreground of a lush wetland in Yancheng, East China’s Jiangsu Province, while rows of wind turbines turn gracefully against the distant sky on July 16, 2026. Photo: VCG A 360-meter-tall wind measurement tower has been completed and put into operation at an 800,000-kilowatt experimental wind farm … China’s high-altitude wind power technology has achieved a major breakthrough, as the domestically developed S4000 Stratosphere Airborne Wind … The core castings for the world’s most powerful onshore wind turbine in terms of single‑unit capacity have recently …
From the Journal: Journal of Applied Physics WASHINGTON, Sept. 22, 2026 — Commercial cameras can be powerful, producing images with exquisite details that mimic real life. In the lab, specially designed cameras can photograph objects in the infrared region, invisible to the naked eye. In The Journal of Applied Physics, by AIP Publishing, researchers from the University of Stuttgart, the Research Center Jülich, and the German company Solarzentrum Stuttgart modified a commercially available camera for something usually done in the lab: measuring the electroluminescence of solar cells. Electroluminescent quantum efficiency is commonly used to determine the efficiency of solar cells. The value is directly related to the cell’s voltage, and, generally speaking, the higher the luminescent quantum efficiency, the better the solar cell. It’s also normal to measure this value with a camera — albeit an expensive, industrial camera that must be carefully calibrated. “Our approach shows that even a relatively inexpensive consumer camera can provide quantitative results when its physical response is properly modeled and calibrated,” said author Jürgen Werner. The camera they used was already primed for their experiment since it lacked an internal infrared-blocking film, something that is normally present in most commercial cameras. These modified cameras can also be used for artistic infrared photography or photos of the night sky. The researchers added a long-pass filter in front of the camera lens to decrease visible background light, providing an infrared electroluminescence image that could later be analyzed based on brightness. “An electroluminescence image contains much more quantitative information than simply showing bright and dark regions,” said Werner. “With a suitable physical camera model and calibration, it can provide absolute luminescent quantum efficiency and, therefore, information about the local quality of a solar cell or module.” The researchers plan to expand the camera’s capabilities in future work, keeping an emphasis on using commercially available technology. “Our next step is to use the calibrated camera to determine quantum efficiencies and open-circuit voltages of further, previously uncharacterized solar cells and modules,” Werner said. “The same model should also be applicable to photoluminescence measurements and potentially to measurements performed in daylight.” The article “New camera model for absolute quantum efficiency measurements from electroluminescence of solar cells or modules” is authored by Jürgen H. Werner, Georgette Udo, and Liviu Stoicescu. It will appear in The Journal of Applied Physics on Sept. 22, 2026 (DOI: 10.1063/5.0349589). After that date, it can be accessed at https://doi.org/10.10.1063/5.0349589. ### New camera model for absolute quantum efficiency measurements from electroluminescence of solar cells or modules Jürgen H. Werner, Georgette Udo, and Liviu Stoicescu University of Stuttgart, Forschungszentrum Julich, Solarzentrum Stuttgart http://jap.aip.org/ 1305 Walt Whitman Road, Suite 110 Melville, NY 11747 (516) 576-2200
For a lot of high school students, summertime brings opportunities to sleep late, hang out with friends or just take time for themselves. However, Annalise Forgash saw the time as an opportunity to serve others. Forgash, a senior at Paul VI High School in Haddonfield, spent a week of her summer volunteering with the nonprofit Let’s Share the Sun Foundation in Puerto Rico, where she helped install solar panels. She was able to participate in the project through a connection with her father, John Forgash, a solar power engineer. One of the reasons Forgash said she wanted to participate was to feel closer to her heritage. “I’m half Colombian. So, I’m of Latin American descent, and being in Puerto Rico makes me feel a little bit closer to that side of my heritage,” she said. “I also felt like it would be a really cool experience because I’ve never done a mission trip before.” Along with a professional crew, Forgash was one of the interns working on the project. “I was the only one that was in high school,” she said. “I was the youngest there.” A crew would deliver all the solar panels and equipment, and then Forgash and her group did the installation. “We had to drill holes into the concrete roof, place down all the brackets, and then lift the solar panels onto the roof and install it,” she said. “It was kind of hard, but the crew was really helpful. We would work for five hours, six hours, and then we had part of the time to talk to [the homeowner] Maria about her story.” Maria, a single mother, lives in Adjuntas, Puerto Rico, a remote village in the mountains. Her home received extensive storm damage, forcing her and her son, who has Down syndrome, to live in the basement of the house without electricity or running water for more than eight months. “They didn’t have electricity for TV. They didn’t have air conditioning. They had no lights or energy,” Forgash said. “They had to collect water. It was like going back in time.” She remembered Maria’s reaction once the work was completed. “You could tell she was over the moon. She kept saying how her son could watch television now and not have food go bad, or worry about it getting too hot at nighttime.” A parishioner of Saint Joan of Arc in Marlton, she said that her summer experience ties into the Catholic values she has learned in school. “I think it definitely relates to giving back into the community and doing things for others,” she said, as well as “having an open mind, not being judgmental of others, being able to open up, and seeing issues and actually working on them.” She said that the experience also helped her appreciate the things she takes for granted. “I have electricity and water all day, every day. I don’t have to worry about it; it’s like peace of mind. A lot of people have peace of mind knowing that they have all these things, when there are so many people in the world that just don’t have that luxury.”
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Solex Energy Ltd has outlined plans to expand beyond solar module manufacturing and EPC services into solar cell production and battery energy storage systems (BESS). The company unveiled its expansion roadmap at its 12th Annual General Meeting, setting a target of 2.2 GW of solar cell manufacturing capacity by FY28 and 5.2 GW by early FY29. It also plans to develop 10 GWh of battery pack and container assembly capacity, with the first 5 GWh phase targeted for FY29. The expansion is part of an investment program of approximately INR 4,000 crore between FY27 and FY30, representing the largest expansion programme in the company’s history. Solex reported revenue of INR 16,211 million for FY 2026, registering a 143.9% year on year growth. EBITDA stood at INR 1,867 million, while Profit After Tax reached INR 983 million. The company also highlighted order visibility exceeding INR 34,000 million, reflecting the growing scale of its operations and market demand for its solar solutions. “Our focus is on creating an integrated, technology driven and globally competitive energy platform from India, with the resilience to grow across cycles and the discipline to create enduring value,” said Chetan Shah, Chairman and Managing Director, Solex Energy Ltd., Solex expects its expansion into solar cell manufacturing to strengthen control over quality, costs and supply chain resilience, while deepening its participation in India’s evolving domestic manufacturing ecosystem. Energy storage represents another strategic pillar of the company’s growth plans. The company sees the integration of renewable generation and storage as increasingly important as electricity demand expands across electric mobility, industrial electrification, artificial intelligence, data centres and other energy intensive sectors. It is targeting revenue potential of more than INR 4,500 crore by FY28, while maintaining a disciplined approach towards capital deployment, execution and technology investments. Solex is also expanding its international outlook through plans for Solex Europe and Solex USA. 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]. Comments Please login to comment The new issue of pv magazine Global is out now! Available in print and digital – get your copy today!
The United States has surpassed a major clean energy milestone, reaching enough operating solar capacity to power more than 50 million American households. The cumulative national solar footprint now stands at 299.4 GWdc across more than 6.2 million installed systems, meaning solar power generation can now cover the equivalent electricity needs of more than one-third of all households across the country. The national landmark was highlighted in the latest U.S. Solar Market Insight report released by the Solar Energy Industries Association (SEIA) and Wood Mackenzie. The report reveals that the domestic solar industry installed 11.4 GWdc of new generating capacity in the second quarter of 2026 alone. That quarterly deployment figure represents a 45% increase compared to the same period last year and a 43% step-up from the first quarter. Utility-scale installations led the second-quarter expansion, accounting for 9.6 GWdc of new grid capacity, up 61% year-over-year. The surge was driven in part by developers expediting project timelines to bring capacity online ahead of the July 2026 safe harbor deadline for federal tax credit eligibility. Together, solar and storage technologies represented 70% of all new electricity generating capacity added to the national power grid during the first half of the year. The expanding deployment footprint reflects broader structural growth across the domestic solar economy. Today, solar supplies nearly 9% of total U.S. electricity generation, nearly seven times its grid share from a decade ago. The sector employs over 280,000 workers across more than 10,000 businesses nationwide, with private solar investment totaling $69.1 billion in 2025 alone. “Solar and storage have grown to a scale most Americans have yet to fully realize, and we simply can’t meet America’s growing energy needs without these technologies,” said SEIA President and CEO Tim Pawlenty. Deployment gains continue to concentrate heavily across Republican-led states. Geographically, states won by President Trump in the 2024 election accounted for 57% of total cumulative capacity and 71% of all new solar capacity brought online during the first six months of 2026. Eight of the top 10 states for new capacity additions this year were red states, driven by rapid project execution in major sunbelt markets. California and Texas continue to anchor national totals, holding 56,457 MW and 55,125 MW of cumulative solar capacity, respectively. Florida ranks third with 22,550 MW, followed by Arizona with 13,197 MW and North Carolina with 10,127 MW. Rounding out the top 10 markets are Illinois at 9,337 MW, New York at 8,410 MW, Nevada at 8,253 MW, Virginia at 7,868 MW, and Georgia at 7,786 MW. Alongside generation deployment, domestic clean energy manufacturing has scaled significantly. More than $18 billion has been invested in U.S. solar factory construction, expanding active facilities across 43 states. Operational U.S. module manufacturing capacity has reached 75.3 GW, with an additional 14.4 GW currently under construction. Domestic solar cell manufacturing infrastructure is also taking shape, with 10.6 GW of operational capacity and 19.1 GW actively being built. Despite macroeconomic pressures and the expiration of residential tax credits that temporarily cooled the rooftop sector, long-term industry projections remain robust. Wood Mackenzie forecasts that the domestic solar market will nearly double over the next five years, maintaining an average annual buildout of roughly 44 GWdc through 2031. Cumulative U.S. solar deployment is projected to reach 769 GW by 2036. Looking out toward mid-century grid projections, the U.S. Energy Information Administration estimates that solar and storage will account for 67% of all planned grid capacity additions through 2030, with solar specifically representing 44% of new grid builds. By 2060, roughly half of all new annual power generation added to the national electrical grid is projected to come from solar energy. 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]. Comments Please login to comment The new issue of pv magazine Global is out now! Available in print and digital – get your copy today!
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