Showing posts with label Solar Energy. Show all posts
Showing posts with label Solar Energy. Show all posts

Wednesday, 2 October 2013

Ikea starts selling residential solar panels in the UK

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Ikea starts selling residential solar panels in the UK




Ikea starts selling residential solar panels in the UK 

..Because when you think of Britain, you think of sunny skies. Ikea has started selling solar panels for residential rooftops at its stores in the United Kingdom. The furniture outfit's move into home solar systems (as opposed to sun-powered lighting) was apparently made attractive due to the drop in cost of solar panels, and Ikea's initial offering will set you back £5,700 (about $9,300). For your money, you get a 3.36 kW system, in-store consultation, installation, maintenance and energy monitoring service. Ikea's got plans to sell solar panels in other locales, but according to Ikea Chief Sustainability Officer Steve Howard, such expansion will be done market by market (so don't expect a worldwide rollout). Hey Steve, might we suggest your next store to start selling solar be someplace with more than two weeks of sunshine per year?
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Wednesday, 25 September 2013

Solar Powered UAVs To Replace Satellites

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Solar Powered UAVs To Replace Satellites




Man’s ambition has always been to touch the sky and then to touch what’s beyond it. We all are aware of this quest that began so many years ago, and over the years, scientists have been busy in refining their methods and techniques. Today’s article covers one such attempt where the scientists have presented a substitute for the regular satellite.
Satellites are very costly; irrespective of their function. In order to keep in revolution, millions of dollars are needed just for one satellite from launch costs to repairs. Nonetheless, Titan Aerospace has attempted to alter the rules of satellite game by presenting a new high altitude UAV in order to trade typical satellites.
The solar powered UAV entitled Solera has an enormous wingspan of 50 meter (164 ft) and 15.5 meter (54 ft) body. Solera weighs only 159 kg (350 lbs) and is capable of generating 7kW of power in daylight with the help of 3,000 solar cells covering its body.
It is the performance of UAV that specifies the craft although its physical features are quite amazing. Solera can orbit for about five years at 104 km/h (65mph) and can reach heights of 20 km (65,000 ft).
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Monday, 22 July 2013

First community solar projects getting launched

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First community solar projects getting launched 





Solar gardens are sprouting in Minnesota.

These innovative solar power projects allow electric customers to invest in a large array off their property and own a share of the output, which gets credited to their monthly bills.

The first solar garden, a large ground-mounted system, is nearly finished in Rockford, next to the headquarters of its sponsor, the Wright Hennepin Cooperative Electric Association, which says it plans to immediately build a second one.

In Minneapolis, start-up company MN Community Solar said Thursday that it expects no shortage of investors for that city’s first planned solar garden atop a business on E. Lake Street.

“The majority of residential customers and many businesses don’t have a roof that works for solar energy,” said the company’s CEO Ken Bradley, a longtime solar energy advocate who helped push adoption of the state’s new solar law, passed in May by the Minnesota Legislature. “Community solar gardens allow anyone to participate.”

Dustin Denison, a company principal, said it hopes to begin construction next year on the planned 40-kilowatt solar array, which is expected to cost $180,000. It will be built atop Northern Sun Merchandising, a seller of T-shirts, buttons and other products with progressive political messages at 2916 E. Lake St.

Denison, who is also a solar installer, said MN Community Solar is looking to build even-larger solar arrays, and has begun talking to cities and businesses about potential sites. Some of those arrays could be 1-megawatt systems, or 25 times larger than the one planned on Lake Street, Denison said.

Minneapolis Mayor R.T. Rybak, a green energy supporter who came to Lake Street on Thursday for the company announcement, said the city likely has properties on which community solar projects could be built.

Meanwhile, the state’s first solar garden neared completion this week in Rockford, and should be wired into the electric grid and...
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Tuesday, 9 July 2013

Solar powered plane finishes journey, lands in NYC

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Solar powered plane finishes journey, lands in NYC





The aircraft soars to 30,000 feet while poking along at a top speed of 45 mph (72 kph). Most of the 11,000 solar cells are on the super-long wings that seem to stretch as far as a jumbo jet's. It weighs about the size of a small car, and soars with what is essentially the power of a small motorized scooter.
The Solar Impulse left San Francisco in early May and has made stopovers in Phoenix, Dallas-Fort Worth, St. Louis, Cincinnati and Dulles.
The cross-country flight is a tuneup for a planned 2015 flight around the globe with an up-graded version of the plane.
Solar Impulse's creators view themselves as green pioneers—promoting lighter materials, solar-powered batteries, and conservation as sexy and adventurous. Theirs is the high-flying equivalent of the Tesla electric sports car.
Europe saw the solar plane first with a test flight from Switzerland and Spain to Morocco last year.
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Thursday, 20 June 2013

AT&T unveils solar-powered charging stations in New York City

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AT&T unveils solar-powered charging stations in New York City

New York City prides itself on being a city powered by innovation, but only in recent years has the city truly begun to embrace cutting-edge technology as a major part of its infrastructure. The latest experiment to hit the city's streets is called Street Charge, a tool that, if successful, could become the gold standard for marrying mobile computing with green tech in major urban centers in the U.S.

Introduced today by AT&T, Goal Zero, and design studio PENSA, the outdoor outposts are solar-powered stations that allow mobile device users to easily plug in their smartphones and tablet devices via six USB ports (including iPhone 4 and 5 ports, and a mini USB port) to get a quick power boost on the go. Goal Zero gave the public its first peek at the setup last year during a test outing in Brooklyn's Dumbo area, a local start-up hub. During that testing phase, the outposts also included Wi-Fi, but these new stations are, for the time being, offered only as power sources.

The initial rollout will start today in select neighborhoods in Brooklyn, Manhattan's Union Square, Hudson River Park and Central Park (during SummerStage), as well as Randall's Island and Governor's Island. Once these stations become more widespread, they could also serve as emergency power sources during disasters like last year's Hurricane Sandy which saw thousands of New Yorkers trolling the streets for outlets to power their devices.
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Wednesday, 19 June 2013

Recharging your car in twenty minutes

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Recharging your car in twenty minutes

The future is now, it seems. Later this year, you’ll be able to almost completely charge an electric car in 20 minutes. We’ve already reached the point where we can do it wirelessly, and now we’ll be able to do it in the time it takes to cook a frozen pizza.

It's as simple as using a single standardized connector that accepts DC fast charging, which was developed by the Society of Automotive Engineers. It’ll be used first by BMW and GM, though Audi, Chrysler, Daimler, Porsche and Volkswagen are reported to be following suit. Specifically, the BMW i3 and the Chevrolet Spark EV are the first two cars to employ the DC fast charge.

“The DC Combo quick charger changes the game,” said GM’s director of advanced vehicle commercialization policy Britta Gross. “Imagine stopping off for a cup of coffee, plugging in your vehicle at the fast charge station outside, run in for your cup of coffee, 10 minutes, 20 minutes later, you have a fully charged vehicle.”

The charger itself is strikingly simple. It uses a single car connector for AC and DC charging, which means it's compatible with the older, standard AC charging stations. But the DC charging is the fast one, bringing the BMW i3 to an 80 percent charge in 20 minutes.

That’s enough for about 80 miles of driving. Obviously, cars with larger batteries will take a longer time to charge, but the BMW i3 offers a pretty good average estimate. AMAZON GIFT CARD GENERATOR

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Thursday, 25 April 2013

SolTech’s Gorgeous Glass Tiles Heat Your Home With Solar Energy

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SolTech’s Gorgeous Glass Tiles Heat Your Home With Solar Energy
SolTech’s Gorgeous Glass Tiles Heat Your Home With Solar Energy
SolTech’s Gorgeous Glass Tiles Heat Your Home With Solar Energy

Alternative energy is known to be a lot of things – cutting edge, earth-friendly and forward thinking – but sadly looking pretty isn’t one of them. Well SolTech is changing all that with their gorgeous glass solar-thermal roof tiles. As if it’s not cool enough that these transparent shingles are able to heat your home by using a simple system to store energy from the sun, they also look like a million bucks!
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Monday, 22 April 2013

Hybrid energy harvester generates electricity from vibrations and sunlight

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Hybrid energy harvester generates electricity from vibrations and sunlight
Hybrid energy harvester generates electricity from vibrations and sunlight




Devices that harvest energy from the environment require specific environmental conditions; for instance, solar cells and piezoelectric generators require sunlight and mechanical vibration, respectively. Since these conditions don't exist all the time, most energy harvesters don't generate a constant stream of electricity. In order to harvest ubiquitous energy continuously, researchers have designed and fabricated a hybrid energy harvester that integrates a solar cell and piezoelectric generator, enabling it to harvest energy from both sunlight and sound vibration simultaneously. The researchers, Dae-Yeong Lee, et al., from Sungkyunkwan University and Samsung Advanced Institute of Technology, both in South Korea, have published their study on the hybrid energy harvester in a recent issue of Nanotechnology. "By using the hybrid energy harvester, two different energy sources can be utilized in one platform," coauthor Hyunjin Kim at the Samsung Advanced Institute of Technology told Phys.org. "Thus the total output power from the hybrid harvester can be increased compared to each separate harvester. Furthermore, by harvesting two energy sources in one device, continuous output can be generated even when only one energy source is available." To design the harvester, the researchers turned to silicon nanopillar solar cells for the sunlight harvesting half of the device. Previous research has shown that silicon nanopillar solar cells are promising candidates as photovoltaic devices due to their low reflection, high absorption, and potential for low-cost mass production. After fabricating the cells using a plasma etching technique and annealing processes, the researchers coated the top of each cell to prepare it for placement of the piezoelectric generator, which was stacked on top using a spin coating method. Last, top and bottom electrodes sandwich the device. The entire harvester has a height of just a few hundred nanometers, with the bulk of the height coming from the 300-nm-tall nanopillars in the solar cell. In tests, the energy harvester could generate electricity from the solar cells with a 3.29% conversion efficiency. At the same time, the harvester could generate 0.8 V of output voltage when exposed to a 100-dB sound. The hybrid device suggests that harvesting both solar and vibration energies can enable more efficient harvesting in certain environments compared to a device that harvests just one kind of energy. "This energy harvester can be very useful where there is no electric grid connected," coauthor Won Jong Yoo at Sungkyunkwan University said. "For example, this device will be useful in moving vehicles such as moving boats, trains, automobiles, etc. The output of 0.8 V is just preliminary data. If we optimize the device structure and fabrication condition, the output power will be increased significantly." In the future, the researchers plan to fabricate all-flexible hybrid energy harvesting devices using plastic substrates in order to harvest mechanical energy more efficiently. More information: Dae-Yeong Lee, et al. "Hybrid energy harvester based on nanopillar solar cells and PVDF nanogenerator." Nanotechnology 24 (2013) 175402 (6pp). DOI: 10.1088/0957-4484/24/17/175402 Journal reference: Nanotechnology
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Solar powered water splitter to produce hydrogen!

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Solar powered water splitter to produce hydrogen!

Solar powered water splitter to produce hydrogen!


The process of splitting water into pure oxygen and clean-burning hydrogen fuel has long been the Holy Grail for clean-energy advocates as a method of large-scale energy storage, but the idea faces technical challenges. Stanford researchers may have solved one of the most important ones.


Solar energy is fine when the sun is shining. But what about at night or when it is cloudy? To be truly useful, sunshine must be converted to a form of energy that can be stored for use when the sun is hiding. The notion of using sunshine to split water into oxygen and storable hydrogen fuel has been championed by clean-energy advocates for decades, but stubborn challenges have prevented adoption of an otherwise promising technology.

A team of Stanford researchers may have solved one of the most vexing scientific details blocking us from such a clean-energy future.

The team, led by materials science engineer Paul McIntyre and chemist Christopher Chidsey, has devised a robust silicon-based solar electrode that shows remarkable endurance in the highly corrosive environment inherent in the process of splitting water. They revealed their progress in a recent paper published in the journal Nature Materials.

Conceptually, splitting water could not be simpler. Scientists have long known that applying a voltage across two electrodes submerged in water splits the water molecules into their component elements, oxygen and hydrogen.

From an environmental standpoint, the process is a dream: an electrochemical reaction whose only requirements are water and electricity and whose only byproducts are pure oxygen and hydrogen, a clean-burning fuel applicable in a promising new class of renewable energy applications. In fact, hydrogen is the cleanest burning chemical fuel known. Practical challenges
“In theory, water splitting is a clean and efficient energy storage mechanism. Unfortunately, solving one problem creates another,” said McIntyre, associate professor of materials science and engineering. “The most abundant solar electrodes we have today are made of silicon, a material that corrodes and fails almost immediately when exposed to oxygen, one of the byproducts of the reaction.”

This particular problem has vexed researchers since at least the 1970s. Many had given up, but McIntyre and Chidsey have devised a clever solution. They coated their silicon electrodes with a protective, ultra-thin layer of titanium dioxide.

“Titanium dioxide is perfect for this application,” explained McIntyre. “It is both transparent to light and it can be efficient for transferring electricity, all while protecting the silicon from corrosion.”

Sunlight travels through the protective titanium dioxide into the photosensitive silicon, which produces a flow of electrons that travels through the electrochemical cell into the water, splitting the hydrogen from the oxygen. The hydrogen gas can be stored and then, when the sun is not shining, the process can be reversed, reuniting hydrogen and oxygen back into water to produce electricity.

Decades of dead ends
Other researchers had attempted to protect the electron-producing silicon electrodes. Some tried other materials, which failed for reasons of performance or durability. Some had even tried titanium dioxide, but those efforts also fell short. Their layers were either materially flawed, allowing oxygen to seep through and corrode the semiconductor, or too thick to be electrically conductive.

Yi Wei Chen and Jonathan Prange, the lead doctoral students on the McIntyre-Chidsey team, discovered that the key to the titanium dioxide’s protectiveness is achieving a very thin, yet high quality layer of material. They found that a layer just two nanometers thick was sufficient so long as it was free of the pinholes and cracks that doomed earlier titanium dioxide experiments.

With their electrodes successfully shielded from corrosion, the researchers revealed yet one more engineering ace in the hole, adding a third layer of ultra-thin iridium, a catalyst, atop the titanium dioxide. Iridium boosts the rate of the splitting reaction and improves performance of the system.

Broader applications
In side-by-side durability experiments, the researchers put their creation to the test. Control samples without the protective layer corroded and failed in less than a half-hour, while those with the titanium dioxide lasted the full duration of the test, eight hours without apparent corrosion or loss of efficiency.

The authors pointed out that their approach is general enough to work on other semiconductor substrates and to integrate other catalysts, allowing for fine-tuning of electrodes to maximize performance. Likewise, atomic layer deposition, the technique that allowed such fine and flawless layering, is in wide application in the semiconductor industry today. It should, therefore, lend itself to application on a large scale. Lastly, the results were achieved without exploring the use of other efficiency-enhancing techniques, such as surface texturing, which could further improve performance.

“We are excited about the possibilities of this technology,” said McIntyre, “as much for the electrode itself, as for the process used to create it.”

Their success might just push a promising technology one step closer to practical application and the world one step closer to a clean-energy future.

Seed funding for this work was provided by these Stanford groups: Precourt Institute for Energy, the Center for Integrated Systems and the Global Climate and Energy Project.

Andrew Myers is the associate director of communications for the Stanford School of Engineering.
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Friday, 12 April 2013

Solar Panels Now Make More Electricity Than They Use

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Solar Panels Now Make More Electricity Than They Use
Solar Panels Now Make More Electricity Than They Use

Solar panels make energy, but they take energy to make, too. And, until about 2010 or so, the solar panel industry used more electricity than it produced, according to a new analysis. Now, the industry is set to "pay back" the energy it used by 2020.
The study looked at what went into building and installing solar panels all over the world, including everything from home installations to solar farms, says Michael Dale, a climate and energy researcher at Stanford University, in a Stanford-produced video. He and a senior scientist, Sally Benson, thought that because the solar panel industry was growing so quickly, it might actually be using more electricity than it produced. Instead, they found an industry at a crux.
"I think that this paper shows that actually the industry is making positive strides and it's even in spite of its fantastically fast growth rates, it's still producing, or it's just about to start producing, a net energy benefit to society," Dale said.
Most solar panels manufacturers now consume lots of electricity, usually pulled from coal or other fossil fuel-burning plants. Stanford News pointed to the example of melting silica rock to obtain the silicon used in most panels. The melting requires electricity to fire ovens to a temperature of about 3,000 degrees Fahrenheit.
Solar panels' energy balance is now tipping, however, because newer technologies reduce that electricity consumption. For example, some newer panels require less silicon, or waste less material in the manufacturing process. Researchers are also looking to replace silicon with more abundant affordable elements, such as copper, zinc, tin and carbon.
Dale and Benson published their full analysis in the journal Environmental Science & Technology.
[Stanford News via the Verge]
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Wednesday, 3 April 2013

This Solar Powered Home Attempts to Trick the Eye

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This Solar Powered Home Attempts to Trick the Eye

This Solar Powered Home Attempts to Trick the Eye














This highly stylized, modern abode is the perfect inspiration for those seeking out solar-powered homes. The latest creation from ROW studios called the 'Ortega House' is located in Cancun in South Eastern Mexico. The home takes advantage of its sunny location by utilizing the sun's energy for cleverly concealed solar panels. 

One of the most striking features of this building is the pool's optical illusion candy cane-inspired design. The single lane statement pool features patterned mosaics in white and baby blue diagonal stripes that continue out of the pool and towards the house itself. This certainly looks like the place to take a dip on a sweltering day in Mexico! ROW is an award winning Mexico-based architecture firm that was founded in 2005 by Álvaro Hernández Félix, Nadia Hernández Félix and Alfonso Maldonado Ochoa.
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