Showing posts with label solar. Show all posts
Showing posts with label solar. Show all posts

Saturday, June 4, 2011

Using Big Data to Make Solar Smarter

Solar rooftops only work in specific environments: an area with enough sun, a roof with the right tilt, a state or city with strong subsidies. But a company called Geostellar is using big data tools to help its solar installer customers deliver more solar panels to more rooftops in places where it actually makes economic sense. Later this year, the company plans to release an open API — so developers can build applications on top of it — and eventually, the company plans to launch a consumer-facing site.

Using Big Data to Make Solar Smarter


Backlink: http://feedproxy.google.com/~r/OmMalik/~3/uN12c6RKi2Y/

Wednesday, November 24, 2010

Portable Solar Chargers, Explained

by Susan DeFreitas

Modern life increasingly involves portable technology. Whether it's laptops, cell-phones, MP3 players, handheld games or all of the above, all that tech requires juice to keep it running, creating an ever-increasing carbon footprint. One way to nip this vicious cycle in the bud is to use an off-grid charger-i.e., one that does not need to get plugged in to produce juice for your portables. As the market for such "advanced charging technologies" has grown over the years (it's estimated this year to total $1.5, and to reach a whopping $34 billion by 2015), solar chargers have proven some of the most popular. Solar chargers make use of a photovoltaic solar panel-often thin-film-to harness the sun's energy and turn it into electricity, acting as a portable primary or back-up charger for a variety of portable devices, via a large number of adaptor "tips," typically included in the price of purchase. As an added bonus, these chargers (like most off-grid chargers) are nearly universal, knocking out the e-waste associated with a number of different, product-specific wall adaptors. Solar chargers come in all different forms and formats-from those that fit in a purse for ease of transport to those that roll out into mats for maximum surface area. Some are waterproof; some are not (a factor to consider when using a solar charger for camping, back-packing, or river trips). They also vary in charge time versus electrical output and performance in indirect sun (important for using solar chargers in less-than-sunny climates). There are also a whole class of solar chargers built directly into bags, whether laptop bags, backpacks, or bike panniers. According to Kriss Bergethon, president of Solar Sphere, an online solar store that carries solar panels, solar chargers and solar kits for a variety of applications, there are now literally hundreds of different solar chargers available, up from a few models just a couple of years ago. He attributes the boom to increased efficiences, which means that today's solar chargers are lighter and more compact-leading more manufacturers to create solar chargers, and more consumers to adopt the technology. Some of the most popular makes, according to Bergethon, are the rollable thin-film chargers, foldable heavy duty versions, and the Solio foldable pocket solar charger, which Google recently donated to international health workers operating in rural areas through the International Medical Corps. (These chargers also have the convenient ability to soak up sun directly through a window, via suction cup.) The Sunlinq and Powerfilm foldable chargers have also proven popular in military applications. What to look for in choosing a solar charger? "The thing to remember in solar," Bergethon told us, "is that more square footage equals more wattage. So the bigger the charger the more juice. You have to adapt the size and style of your charger to your situation." So if you plan to charge your laptop on the go, you may want to choose a solar laptop bag, rather than a pocket-charger, which would be more appropriate to keeping your cell-phone topped off-and if you're depending on your solar charger to keep multiple gadgets operational in the back-country, consider a heavy-duty, rollable charger with maximum surface area. Reprinted with permission from EarthTechling

Portable Solar Chargers, Explained


Backlink: http://featured.matternetwork.com/2010/11/portable-solar-chargers-explained.cfm

Sunday, November 21, 2010

Philadelphia Eagles Tackle a $30 Million Wind and Solar Project

by Tina Casey

The sports world is abuzz over the Philadelphia Eagles' decision install a $30 million renewable energy system in their stadium, but sustainability is nothing new for the progressive football franchise. The Eagles established a Go Green program in 2003, way before it was cool. The stadium's distinctive new spiral wind turbines, along with solar and cogeneration installations, will once again set a high bar for other sports venues to follow. Philadelphia Eagles and Sustainability Back in 2007, while many sports franchises were still merely mulling over the idea of introducing their fans to sustainability, the NFL was beginning to stake out a leadership position by purchasing renewable energy for the Superbowl. Even so, the Philadelphia Eagles' Go Green program was already four years into its mission, which focused on education, conservation and recycling. In 2007, the team announced that it was upping the ante by getting at least 100 of its employees to purchase wind energy. The New Lincoln Financial Field Sustainable Energy Installation It will be hard to beat the Eagles new sustainable energy system, which is designed for high visibility. Built by the Florida-based company SolarBlue, it will consist of 80 futuristic-looking spiral shaped wind turbines rimming the top of the stadium, and 2,500 solar panels on the facade. The system will also include a 7.6 megawatt cogeneration plant along with a "smart microgrid" system to keep everything running at maximum efficiency. Green is Green Green means big bucks for the Eagles, because the system will generate 4 megawatts of excess energy off-peak, which will be sold back to the grid. The franchise also expects to save $60 million in energy costs over the next 20 years. Sports and Sustainability Not to sell other sports short, by the way. This year, Major League Baseball announced a comprehensive sustainability strategy, and the ski industry and golf industry are also charging ahead with conservation and renewable energy projects. Even NASCAR has begun to focus on shrinking its carbon footprint and reducing its use of toxic chemicals. Hey, if NASCAR is into it, what are all those politicians so afraid of? Reprinted with permission from Cleantechnica

Post originale: http://featured.matternetwork.com/2010/11/philadelphia-eagles-tackle-30-million.cfm

Tuesday, November 16, 2010

Solar Shield Protects Energy Network

by Joshua S. Hill

Life in the universe can be difficult for inhabited planets, especially when you're directly in the path of a massive coronal mass ejection (CME) shot out from your own life-sustaining star. Even without a massive network of interconnecting power lines sweeping across the planet, these solar storms can wreak havoc; but add in that same network of power lines and life becomes very tricky. Theorists have predicted nationwide blackouts with year long delays if such a storm were to hit and be strong enough to blow up transformers. One such storm hit on March 13 of 1989 and damaged transformers in Quebec, New Jersey and Great Britain, and is reported to have caused more than 200 power anomalies across the United States. Naturally, there is concern. This concern has led NASA scientists to develop a new project called "Solar Shield," which is aimed at protecting transformers in the 30 minutes before the solar storm hits. "Solar Shield is a new and experimental forecasting system for the North American power grid," explains project leader Antti Pulkkinen, a Catholic University of America research associate working at NASA's Goddard Space Flight Center. "We believe we can zero in on specific transformers and predict which of them are going to be hit hardest by a space weather event." How it Works Solar Shield doesn't have any of the cool futuristic components that its name suggests it does, but what it does have is just as impressive. "Solar Shield springs into action when we see a coronal mass ejection billowing away from the sun," explains Pulkkinen. "Images from SOHO and NASA's twin STEREO spacecraft show us the cloud from as many as three points of view, allowing us to make a 3D model of the CME, and predict when it will arrive." A CME takes somewhere between 24 and 48 hours to travel the distance between its ejection point on the Sun and our planet, which gives us plenty of time to model the cloud. The last 30 minutes before impact are the most important, however. The cloud will sweep past ACE - a spacecraft stationed 1.5 kilometres upstream from Earth - and will take measurements of the CME's speed, density, and magnetic field, and immediately transmit that data to the Solar Shield team working at Goddard's Community Coordinated Modeling Center (CCMC). "We quickly feed the data into CCMC computers," says Pulkkinen. "Our models predict fields and currents in Earth's upper atmosphere and propagate these currents down to the ground." The team are then able to make predictions based on the information which has been garnered and warn utility companies which transformers need to be taken out of the grid - temporarily - to prevent a lasting blackout. The Future While Solar Shield has yet to be tested under actual geomagnetic storms and is therefore extremely experimental, the scientists behind the design are hopeful. "We'd like more power companies to join our research effort," he adds. "The more data we can collect from the field, the faster we can test and improve Solar Shield." Reprinted with permission from Planetsave

Post originale: http://featured.matternetwork.com/2010/11/solar-shield-protects-energy-network.cfm

Sunday, November 14, 2010

Solar Keyboard K750 launched by Logitech at just $80

Logitech has always come up with computer hardware products that change the way people use their Computers. The change in the way Logitech fabricates products, seems to be in alignment with changing times and users have always rated the advantages of using those products positively and have not been bothered mostly, by the disadvantages of using them. Its latest product seems to entail more advantages than its previous innovations.

Friday, November 12, 2010

US, India Launch Space-Based Solar Energy Initiative

by Mridul Chadha

Just before President Obama started his India tour the Indian Space Research Organisation and U.S.'s National Space Society launched a joint forum to enhance partnership in harnessing solar energy through space-based solar collectors. Called the Kalam-NSS Initiative after the former Indian President Dr APJ Abdul Kalam, the forum will lay the groundwork for the space-based solar power program which could see other countries joining in as well. The idea of a multilateral space-based solar energy program was initiated by an Indian Defense Ministry think tank, Institute of Defense Studies and Analyses. A report prepared by Peter Garretson, a US Air Force lieutenant colonel called up on the governments of India and the United States to initiate this pathbreaking project and make the space-based solar energy a commercially viable business venture by 2025. Addressing the press at the National Press Club in New Delhi, Dr Kalam said, "By 2050, even if we use every available energy resource we have: clean and dirty, conventional and alternative, solar, wind, geothermal, nuclear, coal, oil, and gas, the world will fall short of the energy we need." One of the biggest advantages of space-based solar energy is that it is not intermittent in nature as ground-based solar energy resource. An array of solar panels stationed in a geostationary orbit around the world will receive sunlight for 99 percent time of the year. Plus there are no losses due to atmospheric interferences. This partnership between the two countries is likely to gain pace and strength as the United States has now removed some technology-transfer restrictions which were imposed on some scientific research organisations in India after the 1998 nuclear tests. Organisations like the ISRO and Bharat Dynamics will now have access to some sensitive and unique technology. Researchers speaking at the press conference referred to this initiative as a landmark deal which would benefit both the countries. For the US, the deal would potentially create thousands of jobs as it is likely to contribute majority of the hardware for the project. For India, the project would mean enormous amounts of clean energy which it could use to electrify its rural areas and drive its economy. Reprinted with permission from Ecopolitology

Post originale: http://featured.matternetwork.com/2010/11/us-india-launch-space-based.cfm

Thursday, November 11, 2010

Energy Giant Areva to Invest $3 Billion in India Solar Power

by Mridul Chadha

France-based energy company Areva (CEI.PA) is planning to invest $3 billion in India's rapidly growing solar power sector. The company plans to set up 1000 MW solar thermal power capacity in the next five to seven years. Areva already has a presence in the biomass sector with 60 MW installed capacity and launched a joint venture with Astonfield to increase the capacity to 100 MW. Apart from renewables, the company is also expected to gain significant share in India's nuclear energy market through the Indo-French nuclear deal signed last year. Areva is among several foreign companies looking to enter the Indian solar power market. This 'solar rush' is the result of the planned National Solar Mission (NSM) which aims at installing 20,000 MW of solar PV and solar thermal power generation capacity by 2022. With the current installed capacity of merely 12 MW (as of 30 June 2010) there is tremendous room for growth and foreign investors can tap the financial incentives being provided by the government to expand their presence in India. The planned 1000 MW solar thermal capacity will, however, not come under the National Solar Mission. The solar reflectors and other equipment to be used in the plants are likely to be sourced from outside India and as per policy regulations a solar plant is eligible for NSM financial incentives only if it uses Indian-made equipment. Nevertheless, Areva can take advantage of another policy initiative announced by the Indian government. Almost all the state governments have been obligated to procure a definite minimum percentage of their power demand from renewable energy-based power plants and solar energy-based power has a separate minimum quota as well. In case any state government fails to achieve the specified target it would be required to buy Renewable Energy Certificates from any renewable energy-based power producer. Thus the Areva-backed power plants can indirectly earn profits. There is also an acute shortage of skilled professionals in the solar energy sector in India. There are only a handful of companies providing consultancy services for providing engineering and logistical support for designing and setting up a solar energy plant. Areva is planning to launch such services as well. Entering the nascent solar energy sector in India is a highly intelligent move on part of the Areva management. In addition to the nuclear energy market which is comparatively difficult to enter and sustain operations in (due to stringent Indian laws), Areva is also looking to take full advantage of India's favorable solar energy policies by deploying its engineering and executional experience. Reprinted with permission from Earth & Industry

Post originale: http://featured.matternetwork.com/2010/11/energy-giant-areva-invest-3.cfm

Wednesday, November 3, 2010

Logitech Wireless Keyboard Is Solar Powered

by Nino Marchetti

Computer accessories manufacturer Logitech has introduced a new green friendly wireless keyboard which can be powered by almost any available light source, be it the sun or the overhead lights in your cubicle. It is called the Logitech Wireless Solar Keyboard K750 and it will be available this month in the U.S. and Europe for around $80. The Logitech Wireless Solar Keyboard K750 sports integrated solar panels which can be powered by indoor light, eliminating the need for batteries commonly found in wireless keyboards to power the connectivity and other functions. The keyboard, when fully charged, can stay functional for what is said to be at least three months in total darkness. An integrated power indicator light also lets you know when the juice is about dried up so you can recharge the keyboard. Logitech's keyboard, complete with PVC-free construction and fully recyclable packaging, will work with an included solar app that the company says "features a lux meter to help you get the necessary light, makes it easy to get at-a-glance information about battery levels, and even alerts you when you need more power." Other features of the K750 include a 1/3-inch thickness, special keys said to support the shape of one's fingertips, 2.4 GHz wireless connectivity and an included wireless connector one plugs into a computer in order to use the keyboard with. This connector supports up to six compatible Logitech mice and keyboards as well. Reprinted with permission from EarthTechling

Post originale: http://featured.matternetwork.com/2010/11/logitech-wireless-keyboard-solar-powered.cfm

Friday, October 29, 2010

In California's Mojave Desert, Solar Thermal Takes Off [INTERVIEW]

by Todd Woody

By year's end, regulators are expected to approve a host of solar energy projects in California that could eventually produce as much electricity as several nuclear plants. In an interview with Yale Environment 360, John Woolard, the CEO of the company that has begun construction on the world's largest solar-thermal project, discusses the promise - and challenges - of this green energy boom. This week, California Gov. Arnold Schwarzenegger, Interior Secretary Ken Salazar, and other dignitaries gathered in the Mojave Desert to officially break ground on BrightSource Energy's Ivanpah Solar Electric Generating System, the first large-scale solar thermal power plant to be built in the United States in nearly two decades. BrightSource is one of a half-dozen big solar farms, with a combined electricity-generating capacity of 2,829 megawatts, licensed by the California Energy Commission over the past two months. By year's end, California and federal regulators expect to approve additional projects that will produce a total of 4,143 megawatts. At peak output, that's the equivalent of several nuclear power plants and more than seven times the solar capacity installed in the United States last year. The approval of the projects comes after years of environmental review and controversies over the installations' impact on water, wildlife, and fragile desert landscapes. The power plants licensed so far will cover some 39 square miles of desert land with a variety of new and old solar thermal technologies. Unlike rooftop photovoltaic panels that directly convert sunlight into electricity, solar thermal uses the sun to heat liquids to create steam that drives electricity-generating industrial turbines. BrightSource's 370-megawatt Ivanpah project, located just over the California border, 40 miles southwest of Las Vegas, is the world's largest solar-thermal power plant project currently under construction. The company, led by CEO John Woolard, received a $1.37 billion loan guarantee from the United States Department of Energy to build the project, which will deploy 347,000 large mirrors that will surround three towers on 3,500 acres of federal land. The mirrors will focus the sun on a water-filled boiler that sits atop the tower to create high-temperature, high-pressure steam. Woolard, 45, came to BrightSource as chief executive in 2004 after co-founding Silicon Energy, an energy efficiency software company, and stints at California utility PG&E, the Lawrence Berkeley National Laboratory, and VantagePoint Venture Partners, a leading Silicon Valley green tech venture capital firm. He sat down with Yale Environment 360 contributor Todd Woody at BrightSource's Oakland, Calif., headquarters to talk about the future of Big Solar and the challenges the industry faces - from a woefully inadequate electricity grid to the imperative of minimizing water use - as multibillion-dollar projects finally begin to become a reality. Yale Environment 360: Are we witnessing the birth of a major new solar industry in the United States? John Woolard: I hope. The number I always go back to is that we have done 74,000 permits for oil and gas in the last 20 years and we finally have five or six for solar. That's a good step forward. The agencies are learning how to permit, they're learning how to move forward. It's great for the industry and we can finally get some size and consequence. e360: As the photovoltaic industry increasingly becomes dominated by overseas companies in China and elsewhere, does the sheer scale of these solar thermal projects in the U.S. give the country the opportunity to become the technological and market leader? Woolard: Oh, yeah. Solar thermal is very different from [photovoltaic technology]. The power has different characteristics and is more reliable. They're almost apples and oranges. Solar thermal has got very interesting attributes and characteristics that make it unique. In the U.S. we're lucky. The southwestern U.S. has high desert, which means it's closer to the sun, less atmosphere to go through. It's the best solar resource anywhere, outside the Atacama Desert in Chile or a few places. Harnessing that resource effectively is the most important thing. So we don't have a quantity and energy problem; it's a collection and distribution problem. e360: BrightSource's Ivanpah project is not only the first large-scale solar thermal project to break ground, it is the first to deploy a new power tower technology. Why is that significant? Woolard: Our team was part of building older trough plants and you learn a lot. If you take a power tower, you get higher temperatures and pressures. That gives you higher thermo-to-electrical conversion efficiency. Think of that as more efficiency, less waste, lower cost. Because of that, you need fewer mirrors, less solar field, and you have a more efficient design. The other gets down to how you actually build on the land. If you take the older trough designs or anything with a lot of mirrors, [it] would degrade the land. It's more damaging from a soil and runoff perspective. The big [problem] is water. What is the world going to look like over the next 20, 30, 40 years? Water in the desert is going to become a much more challenging proposition. So we've gotten water usage down to a minimum - the lowest of anybody in the world, basically. e360: Will California be an early proving ground to see which technologies deliver on their promises? Woolard: It takes a lot to get a project built. You've got to have a technology that has been proven. It has to work within cost parameters that are acceptable, you have to have a power purchase agreement [with a utility], where given the costs your price is acceptable. Then you can bring investment in, and then you need the basics of transmission and permitting. There are very few [companies] that have all that together right now. We're fortunate, we've done it before, and we've put together that whole basket. e360: But until they're built and the switch is flipped and the electricity is generated, in some ways we won't know if they live up to their promise, right? Woolard: Projects have to get through a gauntlet of de-risking. It's not like everybody that starts gets through that gauntlet. Given the conservative nature of the project finance community, I don't see things moving forward that haven't been very, very de-risked, where you know the cost, you know the price, you know the output. You know all of that before you start. You don't take chances with a billion dollars. e360: Ivanpah is not only the first solar power plant to break ground but it also holds the distinction as being the one that took the longest to be licensed. What were the key lessons you learned from the three-year state licensing process? Woolard: One was start early. You can't ever assume you're going to get through these processes quickly. Early engagement with all the constituents is really key. Everyone from local communities, the labor community, the environmental community. All those stakeholders have a role in shaping the project and the project changes over time. It modifies, you learn. We reduced the footprint of the project. In the original application, it was 7,000 acres, then it went down to 4,000 acres. We reduced it further to 3,500 acres. Originally, there were seven towers and we reduced that to three. We're taking rare plants and we're trimming vegetation, so whereas other people come in and bulldoze things, we're actually taking vegetation and leaving it in place, which helps the soil and runoff and keeps the ecosystem as intact as you can. We're putting [mirrors] in and planting them every 20 or 30 feet. That's just a post. We're not doing concrete. We're actually taking areas where you have rare plants and cordoning them off. We have a rare-plant nursery. e360: When it comes to these projects, the new buzz phrase from Interior Secretary Ken Salazar on down is "smart from the start." What did BrightSource do that was smart from the start on Ivanpah, and what were the big things you would have done differently in retrospect? Woolard: I'd say the smartest was that we worked with the BLM [the Bureau of Land Management] and a lot of the environmental constituents to think about the siting as early on as possible. Where you don't locate is as important as where you do locate. Doing early surveys to make sure there are no endangered species, whether they are animals or plants. You're always going to have something. One of the things we did well was pick a site close to a highway, which had two transmission lines across it, had natural gas, was near a casino. We picked an area that was as relatively benign as you can get. e360: Still, there are some groups still opposed to the project as they consider it to have an unacceptable impact on the threatened desert tortoise. Woolard: Yes, I think some groups would rather have it somewhere else if they could. I think also most of the groups realize we're all on the same side of the fight. In the end, we're working on climate change issues. If plants don't get [built] here and California can't meet its 33 percent or 20 percent [renewable energy mandates], you can't start building plants in India and China and other places. e360: It seems that one thing BrightSource did that avoided a lot of controversy was the water issue. You chose to use "dry" cooling, which uses substantially less water than "wet" cooling. Woolard: Best decision we ever made as a company. We were the only one that did it early. The fact that we're doing it has forced others to do it. If you use 2,000 or 3,000 acre-feet of water [the equivalent of nearly 1 billion gallons] in the desert on an annual basis, that's obscene. We're providing power for 150,000 homes, and we're using water for 300 homes. That's as water-efficient as anything you can do. Fossil plants still use wet cooling and everybody ought to know that. That needs to change. It ought to be a level playing field. It shouldn't just be renewables that do this. Energy and water are so inextricably linked. e360: While regulators have tried to put big solar projects on the fast track, power line projects to connect solar power plants to the grid remain in the slow lane. How big an obstacle will transmission constraints be for the projects already approved, as well as those in the pipeline? Woolard: For our projects, we have what's called LGIA - large generator interconnection agreements - that give us transmission to deliver the power into the California grid. For future projects, you get your LGIAs "x" months in advance of your financial close, so we're working now on what the transmission is for which sites. It's about how you move around and adjust, given everything from appropriate environmental concerns to transmission. We can move within the existing [transmission] system, but the existing system is broken and dysfunctional. In the last decade we've done 12,000 miles of interstate natural gas pipelines and 668 miles of interstate [electricity] transmission. A national renewable energy standard [requiring a percentage of electricity to come from green sources] is hollow without the transmission. It's like engaging in interstate commerce without the highways and rails. To me transmission is the enabler of a free market. It should be the most bipartisan, universally accepted effort we make as a country because it enables people to compete, it enables prices to go down. e360: Is there enough existing transmission for your projects you have contracts for? Woolard: No. Within the system, it takes seven to 10 years to advance and build transmission. So we started planning in 2006 for transmission in 2013 and 2014 and 2015. Our next sites, and sites after that, we know how we're going to do things. But the system itself - you shouldn't have to do what we have to do. You're adding a lot of cost and inefficiency through this whole system. e360: Utilities are increasingly interested in energy storage to offset the intermittent nature of renewable energy sources like wind and solar. Is energy storage something BrightSource is looking at? Woolard: We've been looking at it. In fact, if storage was super cheap you would see it in coal plants. You would be time-shifting power all over the place [storing electricity when demand is low and release at times of peak demand.] If you look at where storage is being used, it's in areas where they pay a lot for power - like Spain. Storage is not an engineering question at all. It's a question of economics. We can integrate storage whenever it's economically smart. It's not necessarily economically smart yet, but it will be over time. Reprinted with permission from Yale Environment 360

Post originale: http://featured.matternetwork.com/2010/10/californias-mojave-desert-solar-thermal.cfm

Wednesday, October 27, 2010

Largest Solar Farm in Northeast U.S. Under Construction

by Zachary Shahan

Con Edison Development and Panda Power Funds started construction on a 20-megawatt solar electric generating station in Pilesgrove, NJ last week. This solar farm will be able to power over 5,100 homes and will be the largest solar farm in the northeastern U.S. upon completion. The farm will include 71,400 solar panels and operation is expected to begin next spring. The clean power generated from these solar panels (20-megawatts DC or 18-megawatts AC) will reduce global warming emissions as much as taking 3,500 cars off the road each year would do. New Jersey's leading solar energy incentives were a big reason why the farm is being built in New Jersey. "New Jersey has long been a national leader in promoting alternative energy, and this project is proof that our commitment to strong public-private cooperation is a model for success," said New Jersey Senate President Stephen M. Sweeney. "The State of New Jersey has set the pace for state governments nationwide through its powerful commitment to renewable energy, and that is why this solar installation is becoming a reality," said Robert Mennella, senior vice president and chief operating officer of Con Edison Development. "Thanks to an intelligent partnership between government and the private sector, New Jersey has become the tip of the sword in the green-energy economy," said Todd Carter, president and managing partner of Panda Power Funds. "Garden-state legislators have incentivized us to create jobs with free-market mechanisms - not costly government subsidies, grants or cumbersome loan guarantees." There you go, New Jersey's progressive solar energy incentives are paying off. More states (and the nation as a whole) would do well to take note. Reprinted with permission from Cleantechnica

Post originale: http://featured.matternetwork.com/2010/10/largest-solar-farm-northeast-us.cfm

Wednesday, October 20, 2010

Making Steel into Solar with Spray-on Photovoltaics

by Mridul Chadha

A group of organizations including Tata Steel-led Corus and Swansea University (Wales, UK) are developing a new technology that would convert stell sheets into power generating solar cells. The technology involves coating steel sheets with photo-sensitive dyes. The technology has significant applications since it is highly efficient even in diffused sunlight. Therefore, countries at higher latitudes or those with limited solar energy resource can generate significant amounts of solar-powered electricity with going for large-scale power plants. If extended, the technology can find its way to the automobile industry where photo-sensitive dyes can be applied to cars to generate electricity to split water into hydrogen and oxygen for fuel cells. Tata recently invested in an American company, Sun Catalytix, which integrates low-cost catalyst with solar-powered fuel cells to generate power. The United Kingdom has an estimated four billion square meters of roofs and facades which, if covered with these steel sheets, will meet as much as a third of the country's renewable energy demand by 2020. The technology gains significance because the process of 'printing' these dyes on the steel sheets has already been mastered by Tata's European subsidiary Corus which is working on a new plant for the production of these steel sheets. Integrating low-cost solar energy products with the existing buildings is economically sound as there is minimal investment on infrastructure. The costs of land acquisition, procurement of thousands of solar panels and connecting them to the main grid is avoided. Homeowners can make use of this technology without worrying about acquiring any additional power generating equipment. The homeowners can use a part of the power generated themselves and can supply the surplus to the grid. Tata has been making significant investments in the renewable energy sector, both in India and abroad. An Indian subsidiary, Tata BP Solar is one of the leading manufacturers of solar panels in India. Tata Power has plans of testing a 2 kw micro wind turbine which can be used in rural homes for power generation. Its power distribution arm, North Delhi Power Limited (NDPL), is working on a feed-in scheme for the residents of Delhi. A $32 million research center has been established at the Swansea University for the project. The Imperial College of London and universities of Bath, Strathclyde, Glyndr, Bangor and Cardiff are also participating in the project. Reprinted with permission from Earth & Industry

Post originale: http://featured.matternetwork.com/2010/10/making-steel-into-solar-spray.cfm

Friday, October 15, 2010

Voltaic Talks All Things Solar Bags [INTERVIEW]

by Nino Marchetti

One of the most common things seen today in calling a gadget green is to slap solar panels on it. All manner of cheap designs have some sort of panel installed to harness solar power, not always efficiently, as a means to power some attached device like a cell phone through cleaner energy. There are a handful of companies out there, however, doing it right, and we believe solar bags maker Voltaic Systems happens to be one of them. Voltaic designs and sells bags with solar panels installed in them, such as the Converter Solar Backpack we reviewed a few months ago. These bags harvest the sun's energy through the panels and channel it into a power storage unit you later can connect to a compatible device in need of electricity. Voltaic is one of the pioneers in the space of this type of solar bag technology. To learn more about them, we interviewed its head tech expert Jeff Crystal to see exactly how good solar gadget technology works. EarthTechling (ET): How did Voltaic come into existence? Jeff Crystal: Our founder and lead designer, Shayne McQuade, was traveling in Spain with a small standalone solar charger and was frustrated on two levels. First, it had so few solar cells (about 1 Watt) that it barely worked and second, he found that he often would forget to take it out of his bag and set it up to catch available sun. The first solar backpack was the opposite of that solar charger. There was lots of area for solar panels (4 Watts) and you didn't have to worry about setting it up, because it was set up. A few blogs including Treehugger picked up the bag and the company took off from there. ET: Why do you think solar bags such as yours have become so popular? Crystal: There are both functional and emotional reasons. On the functional side, we have all become so dependent on electronics, most notably our smartphones which have fairly big batteries and short battery life. Our bags and chargers keep these devices running. The included battery storage is crucial for this function. On the emotional side, I think our bags combine the fun of gadgetry with an environmental component. If you wear one of our bags, you will get stopped on the subway, in the airport, at a concert and asked "what does it do?" or "how well does it work?" The solar panels are this great conversation starter for discussions on solar and alternative energy in general. For most of our customers, this is really fun. ET: How does the solar panel technology in Voltaic bags compare to that found in smaller devices like solar mobile phone chargers? Crystal: The technology in the panels and the battery are pretty similar. Most of the compact chargers are using monocristalline cells like us. The main difference is charge times. Charge time is almost directly proportional to the amount of solar cells (visualized by surface area) you have in your charger. If you have a Solio or a High Tech solar charger which have 1 Watt or less of cells, you'll probably spend 16 hours trying to charge an iPhone to full, assuming the phone and the internal battery are empty. With 4 watts, we're charging an iPhone in 4.5 hours. A few other things that are interesting (at least to solar geeks like us): - We recently upgraded the battery cells to high-temperature Li-Polymer versions. These cost a bit more, but it means that the battery will maintain charge capacity longer than before. - In addition, we use a really high quality coating on the panels that lasts a long time and is super tough. We try and destroy them in this video and it doesn't work. ET: What is the craziest thing you've ever heard someone try to charge a Voltaic bag with? How did that go? Crystal: A fellow in Alberta is using the packs to power a gas detection unit to detect leaks. It seems to work very well. The solar powered DJs the Sycons in Los Angeles also use our gear to run their MacBooks at gigs. I think the crazier thing is where people take the bags. We love to get pictures and stories back from successful trips to the Arctic Circle, the top of Kilimanjaro and multi-year Peace Corp missions. ET: What future product plans does Voltaic have that you can share? Crystal: We have half a dozen products in development that we'll be launching in the next six months or so. Our goal on the solar charging front is to span from high-quality, inexpensive chargers for phones on one end to bags and standalone chargers for the new wave of tablets and portable laptops. The next year will be a lot of fun. Reprinted with permission from EarthTechling

Post originale: http://featured.matternetwork.com/2010/10/voltaic-talks-all-things-solar_2107.cfm