Environment-Clean-Generations

Environment-Clean-Generations
THE DEFINITIVE BLOG FOR EVERYTHING YOU NEED TO KNOW ABOUT THE ENVIRONMENT YOU LIVE IN, WITH REFERENCE TO LIFE, EARTH AND COSMIC SPACE SCIENCES, PRESENTED BY ENVIRONMENTAL ENGINEER DORU INDREI, ENVIRONMENTAL QUALITY AND ENERGY SPACIALIST
"Life is not about what we know, but what we don't know, craving the unthinkable makes it so amazing, that is worth dying for." Doru Indrei
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Showing posts with label power. Show all posts
Showing posts with label power. Show all posts

The Limbo-Dancing Robot


It seems that robots with a soft touch are all the rage.
A flexible robot built by Harvard scientists that can wiggle and worm through tight gaps is the latest prototype in the growing field of soft-bodied machines.
The inspiration for it came from squids and starfish, which deform their shapes to move around. Robots that can manoeuvre in this way could be particularly useful after a disaster like an earthquake, with rescuers able to send them through small cracks.




Shaping up to be a great innovation: The flexible robot can inflate and deflate and wiggle and squirm to allow it to move through small gaps
They could also be deployed on battlefields where the terrain would be too rough for more conventional rigid machines.

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'The unique ability for soft robots to deform allows them to go places that traditional rigid-body robots cannot,’ Matthew Walter, a roboticist at the Massachusetts Institute of Technology, said in an email to the Associated Press.
A team from Tufts University earlier this year showed off a four-inch (10-centimetre) caterpillar-shaped robot made of silicone rubber that can curl into a ball and propel itself forward.

The Harvard project, funded by the Pentagon's research arm, was described online yesterday in the journal Proceedings of the National Academy of Sciences.

The new robot, which took two months to construct, is five inches (12.7 centimetres) long. Its four legs can be separately controlled by pumping air into the limbs, either manually or via computer. This gives the robot a range of motions including crawling and slithering.
The researchers, led by chemist George M Whitesides, tested the robot's flexibility by having it squirm underneath a pane of glass just three-quarters of an inch from the surface.
Scientists maneuvered the robot through the tiny gap 15 times using a combination of movements. In most cases, it took less than a minute to get from side to side.
Researchers eventually want to improve the robot's speed, but were pleased that it did not break from constant inflation and deflation.
‘It was tough enough to survive,’ said Harvard postdoctoral fellow Robert Shepherd, adding that the robot can traverse on a variety of surfaces including felt cloth, gravel, mud and even Jell-O.
There were drawbacks, though. The robot is tethered to an external power source and scientists need to find a way to integrate the source before it can be deployed in the real world.
‘There are many challenges to actively moving soft robots and no easy solutions,’ Tufts neurobiologist Barry Trimmer, who worked on the caterpillar robot, said in an email.
Robotics researcher Carmel Majidi, who heads the Soft Machines Lab at Carnegie Mellon University, said the latest robot is innovative even as it builds on previous work.
‘It's a simple concept, but they're getting lifelike biological motions,’ he said.
Click here to see video. 
Environment Clean Generations

Energy Form Your Footsteps


Can you imagine the power of 50,000 steps a day? Well, Laurence Kembell-Cook, the director of Pavegen Systems imagined it and created Pavegen tiles - a low carbon solution that aims to bring kinetic energy harvesting to the streets. Not surprisingly, the tile is receiving a great deal of attention as a solution for power-hungry cities with a lot of walking traffic.


 Designed for use in in high foot-traffic areas, the tiles convert the kinetic energy from footsteps of pedestrians into renewable electricity, which can be stored in a lithium polymer battery or used to power low-wattage, off-grid applications like street lighting, displays, speakers, alarms, signs, and advertising.

Each time someone steps on the tile, a central light illuminates, "connecting" the person to the part they play in producing the 2.1 watts of electricity per hour the tiles can generate (and providing self-sufficient lighting for pedestrian crossings).


The tiles are made from nearly 100-percent recycled materials (mostly rubber) and some marine grade stainless steel. They can be retrofitted to existing structures and are waterproof as well as designed to withstand outdoor conditions.

Pavegen tiles were used as a dance floor at Bestival on the Isle-of-Wright and are currently being tested in East London. They have been successfully installed in a school corridor where they are currently being monitored for durability and performance while helping to power the building. Speaking of durability, each tile is claimed to have a life of approximately 20 million steps or 5 years.
In September 2011 Pavegen received its first commercial order for the London 2012 Olympics Site where they will be used in the crossing between the Olympic stadium and the Westfield Stratford City Shopping Center.


Here's the company's product demo:


by "environment clean generations"

Organic Solar Cells


Teams of researchers all over the world are working on the development of organic solar cells. Organic solar cells have good prospects for the future: They can be laid onto thin films, which makes them cheap to produce.

Established printing technologies should be employed for their production of the future. In order to achieve this goal of suitable solar cell architecture as well a coating materials and substrates have to be developed. “This method permits a high throughput, so the greatest cost is that of materials,” says Michael Niggemann, a researcher at ISE.





Nevertheless, organic solar cells are not intended to compete with classic silicon cells – they are not nearly efficient enough to do that just yet. Because they are flexible, however, they can open up new fields of application: Plastic solar cells could supply the power for small mobile devices such as MP3 players or electronic ski passes. Another possibility would be to combine solar cells, sensors and electronic circuits on a small strip of plastic to form a self-sufficient power microsystem.

Japan Energy-Short


 Solar panels like these on the rooftop of Itochu headquarters in Tokyo would become more common in Japan under Prime Minister Naoto Kan's ambitious renewable energy plan. But this summer, the emphasis is on conservation.

At Tokyo's Meiji Gakuin University, professor Keiko Tanaka has been teaching classes with half as much lighting as usual and with less reliance on computers and other electricity-hogging tools. She now often gets out her chalk and eraser to use the blackboard.

But with tsunami-torn Japan's electricity system struggling, she wonders whether her fellow citizens will commit to the level of energy savings the nation needs.

"Japan is a country where 18-year-old girls take the elevator to go up a single flight of stairs because they don't want to sweat," she said. "It is a country where most toilet seats are heated, and there is an electric noisemaker in the women's toilet to mask the noise. People have really gotten used to creature comfort at very high energy costs."

Those costs are under scrutiny as perhaps never before, due to the loss of the nuclear plant Fukushima Daiichi and other grid infrastructure damage in the wake of the March 11 earthquake and tsunami. The International Energy Agency (IEA) said in a report this week that Japan "is in the midst of perhaps one of the most severe electricity shortfalls in history."

Japan has scrambled to repair infrastructure and increase its imports of liquefied natural gas (LNG), but the problem could get worse, the IEA warned, due to political backlash against nuclear energy, which before March provided one-third of the nation's electricity.

In the long run, Prime Minister Naoto Kan has indicated a push for renewables, setting a new goal of 10 million solar-powered homes by 2020, and abandoning ambitious nuclear expansion plans. But Japan—which has no fossil fuel resources of its own—faces an immediate test in the sweltering months of July and August, when air conditioning demand typically strains the grid. Japan's government says its citizens need to reduce their electricity demand this summer by 15 percent, and in Tokyo, the goal is 25 percent.

The IEA says Japan faces a challenge in meeting these goals, since—heated toilets aside—its economy already is far more energy-efficient than that of other nations. To make even greater strides, "Japan will have to undertake deep energy-efficiency and conservation measures," the IEA report concludes.

Faced with potential crisis this summer, Japan has attempted to ramp up the Cool Biz campaign it has promoted since 2005. Re-branding it Super Cool Biz, Japan is calling for offices to keep temperatures at 28°C (85°F), when summer high temperatures in Tokyo can surpass 30°C (86°F) with high humidity. Office workers are encouraged to shed their business suits in favor of sandals, khakis, and pedal pushers.
Japan's Ministry of Economy, Trade and Industry announced it planned to lead by example on energy savings—reducing the use of printers and copiers in its offices, deactivating automatic doors, reducing the number of elevators in services, and adopting early work hours.

But some advocates of saving energy already are frustrated. Taro Kono, a member of the House of Representatives in Japan's Diet, the national parliament, said he has been trying to encourage telecommuting, but the effort has fallen short of his expectations because many businesses remain unwilling to relinquish the ability to physically see what workers are accomplishing.

Japan's energy consumption per unit of GDP is 20 percent below the world average and 30 percent below that of the United States, according to the World Resources Institute's widely followed EarthTrends data. Japan's Agency for Natural Resources and Energy (ANRE) estimates that Japan improved its energy efficiency 37 percent in the past 30 years.

The IEA, in its report entitled "Saving Electricity in a Hurry," said it remains unclear how much farther small and medium-sized Japanese businesses will cut demand voluntarily. The IEA said many energy-saving measures at those companies require shifting operations to evenings and weekends—something that will require unions' approval and could disrupt many parents' schedules.

Post-Tsunami, an Anti-Nuclear Wave

Adding to Japan's electricity shortfall woes is a growing issue due to the nation's long-standing requirement that its nuclear power plants undergo routine maintenance every 13 months, with politicians in the plants' regional prefectures providing final approval before restart. The restarts typically are approved routinely, but all have been delayed since the Fukushima Daiichi disaster. More as a result of these holdups than earthquake damage, only 19 of Japan's 54 nuclear reactors are now in operation.

Kyushu Electric, which provides power to southwest Japan, received a welcome bit of news this month, when a local mayor approved its proposal to restart the reactors at its Genkai nuclear power plant in Saga prefecture. Those reactors had been shut down for maintenance since last winter. 

The final decision lies with the prefecture's governor, Yasushi Furukawa, who expects to make a decision by mid-July.
Energy experts say that if Furukawa decides against a restart, other governors could follow suit—setting in motion a chain of events that could idle all of Japan's nuclear reactors within a year.
Trade and Industry Minister Banri Kaieda this week sought to reassure citizens of the reactors' safety, pledging that the government would order stress-testing at all the plants.

Renewable Energy's Rising Sun

It remains to be seen whether the stress testing in the coming weeks will succeed in reassuring Japan's citizens on nuclear plants' ability to withstand earthquakes and tsunamis, but it is clear that opponents have been able to seize on the Fukushima disaster to urge rapid expansion of alternative sources.

They have argued that Japan's rich geothermal resources—with nearly 200 volcanoes and some 28,000 hot springs—could provide more than 80,000 megawatts of generating capacity, enough to meet half of the country's electricity needs. In addition, a 2009 study published in the proceedings of the National Academy of Sciences estimated that the country's land-based wind resources could provide another half of its electricity.
Japan has aggressively sought to upgrade its solar potential—a cause taken up by Kan before he survived a no-confidence vote earlier this month. 

The country has set a goal of increasing solar photovoltaics, mostly in rooftop panels, from 3,500 megawatts in 2010 to 53,000 megawatts by 2030. Beyond Kan's target of powering 10 million homes by 2020, there would be enough solar photovoltaics to power 18 million Japanese homes by 2030.

Masayoshi Son, the founder of Softbank Mobile and the country's wealthiest man, has drawn substantial attention for his plan to start a research foundation for renewable energy, bolstered by millions of his own start-up money. So far, 35 of Japan's 47 prefectures have signed on as founding members.

"The means to do this are certainly in abundance," said Andrew DeWit, a professor of public finance at Tokyo's Rikkyo University who studies the country's energy situation. "This sounds like idealistic talk, but I really think Japan, given that it's got all this pent-up demand for renewables, could see in over a year or two a truly astounding emplacement of renewable capacity."

DeWit acknowledged, however, that Japan's nuclear energy proponents will not abandon that energy source easily. "There's all kinds of rhetoric—that wind farms are too noisy, they kill birds and so on," he said. "The energy economy of this country is going to be decided over the next few months . . . The key things seem to me to be the increasing heat of summer and how disastrous this nuclear problem is."

With the future of Japan's energy supply in question, the focus for most citizens now is on cutting demand. Kazuto Tsuchiya, a student at the University of Southern California who is spending the summer with family in Suzaka in central Japan, said his relatives put off an earlier decision to buy an air conditioner.

"We are going to bear the heat of summer with round paper fans and Japanese folding fans," he said. Tschiya sees his fellow citizens neither resisting conservation nor enthusiastically embracing it.
"It's more like people think that it's 'sho ga nai' in Japanese, meaning, 'We have no choice, we have to accept,' '' he said.

by 'environment clean generations"

Giant Solar-Powered Artificial Waterfall



The structure could help Rio de Janeiro achieve its goal to host the first-ever zero-carbon Olympics. Several past Olympic hosts have promised greener events, but Rio de Janeiro could set a new standard with a solar-powered artificial waterfall building that operates day or night. The eye-catching Solar City Tower represents one of the standout entries in the International Architecture Competition for the Olympic Games 2016.

The tower uses many solar panels and a solar power plant to produce energy for the Olympic village by day. Any excess energy goes toward pumping seawater up into the tower for storage, so that it can be released by night as a spectacular waterfall. The falling water would also help turbines create electricity for the nighttime village.
That neat energy storage scheme proposed by the Swiss firm RAFAA is similar to many that exist for solar power or other renewable energy today, except on a much larger scale.

Anyone not impressed with either the energy solution or aesthetics can still enjoy social gatherings and events held within an indoor amphitheater, along with a cafeteria and shop situated beneath the waterfall. Bolder visitors can catch a breathtaking 360-degree view of the city from the observation decks and urban balcony, or even do a little bungee jumping from 90 stories up.
Rio de Janeiro has already promised the first zero-carbon Olympic Games, and started by planting 3,580 saplings last September to offset all the carbon emitted during the city's bid to host the games.


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Liquid Metal Shoes



We're tired of hearing vague promises about how our shoes will one day be able to power our gadgets, but this particular vague promise got our attention for two reasons: one, it involves liquid metal, and two, the amount of power that it can harvest from walking is ridiculously huge.

Most systems that harvest energy from movement use piezoelectrics. That's fine, there's nothing wrong with that, except that piezoelectrics generally produce power measured in milliwatts. Milliwats of power can potentially run low-power sensors, trickle charge a battery, or (if you're lucky) run something like an iPod shuffle.

Researchers at UW-Madison have been working on an energy harvester that they say can deliver watts of power. And not just one or two watts, but up to 10 or 20. This is a huge amount of power to get from a "free" energy harvester; we're talking thousands of times more powerful than the current generation of pizeoelectrics. An iPhone, for example, typically consumes under five watts. This means that 10 watts could power two iPhones, and 20 watts could power four of them! Four iPhones! Imagine the possibilities!

To get this much power, the researchers ditched the piezoelectric idea entirely, and instead invented a new energy harvesting processes they're calling "reverse electrowetting." A liquid metal (in this case, it's something called galinstan which is non-toxic and used in thermometers) is stored in pouches at the heel and sole of a shoe. As you walk, you pump the nano-sized droplets of the liquid metal through tiny channels, creating a electricity which is stored in a battery at the center of the shoe. It's a completely sealed system that requires no maintenance: all you have to do is walk.

To take advantage of all this power, one option is to just kludge a USB port into your shoe and plug in directly, but there may be more creative ways to go about making your devices last longer. For example, your cellphone expends much of its power broadcasting intensively enough to reach the closest cell tower. If instead you had a sort of miniature self-powered cell tower in your shoe that could amplify you're phone's signal, your phone would only have to broadcast a few feet instead of tens of miles, boosting its battery life by a factor of 10 or more.

The company that the UW-Madison researchers founded to commercialize this technology is called InStep NanoPower. They're currently working on a prototype which should be ready in a few years, and a product for both the military and civilian markets will follow. Ultimately, the cost of the embedded harvester is not expected to exceed the cost of the footwear itself, meaning that at the outside, a pair of shoes might get twice as expensive with the harvester inside. But considering how much power this thing can supposedly generate, I'd say that it would definitely be worth the premium to never have to worry about recharging your stuff again.

As long as you get off your ass and walk around every once in a while, that is.

by "environment clean generations"

The Solar Soldier



            FLEXIBLE solar panels, thinner than a human hair or a sheet of paper, will soon be used by Australian soldiers on patrol in Afghanistan as a portable power source.

            The solar cells, invented by researchers at the Australian National University, can be used to cover helmets, tents or clothing and recharge electronic gear such as night vision goggles.

            They also have extensive potential in civilian applications, including recharging phones and computers, because a square metre of lightweight solar panel can generate 140 watts of power and yet be rolled up into a ball afterwards.

            ''A typical solar cell is about 0.2 millimetres thick, which is 200 micrometres - that's too thick to bend, it would shatter,'' the project's chief investigator, Andrew Blakers, said.

            ''But these cells are about 45 microns thick, so they are flexible and also about the same efficiency as commercial solar cells. By comparison, really fine quality merino wool is about 18 microns thick.''

             In practice, many square metres of panel could be unfurled from a box about the same size as a wine cask. ''You are looking at being able to carry hundreds of watts of power generation around in a small space, so it's especially good for remote areas,'' Professor Blakers said.

             ''Other applications could include powering tracking devices attached to kangaroos or other animals.'' The ''sliver'' solar cells are being built in Idaho, in the US, by Transform, a company part-owned by the Australian utility Origin Energy.

               An army spokesman, Major General John Caligari, said soldiers carried a large amount of battery-powered gear that needed recharging. ''The average soldier would carry around half a kilogram of batteries to operate radios, night vision devices, torches, communications,'' he said.

               ''If we were able to have a single source of power [without recharging batteries] … then we would be able to run all those electrical systems and reduce our weight significantly.''


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Blacklight Energy - New Type Of Celan Energy



    Blacklight Power a company founded by a Harvard medical doctor called Randell Mills, says it can push hydrogen atoms into a state that most scientists deny exists. The company claims that energy this atomic push releases can create electricity for a single cent per kilowatt hour, less than any known process, including burning cheap, dirty coal. The company says it can do so with a non-polluting, self-perpetuating process that mostly feeds itself with common water.

               Breakthrough of the century, or glorified scientific scam? I’m not sure, but most companies with claims this big are produced in a crazed inventor’s basement — and stay there. Blacklight, by contrast, claims $60 million in funding, including about $10 million from electric utilities Conectiv and PacifiCorp, as well as amounts from unnamed hedge funds and members of its all-star board of directors ncluding Shelby Brewer, a Reagan-era US assistant secretary of nuclear energy, and Michael Jordan, CEO of Electronic Data Systems.

              Some history: Blacklight’s process was discovered in 1991 by Mills, who claimed that he’d found a way to produce a molecule called a hydrino, which is a theoretical form of the hydrogen atom in which the electron has entered a lower orbit — meaning the atom itself contains less energy. Mills decided that he could not only produce hydrinos, but also capture the energy released during the transition from hydrogen, using it to generate electricity. 

              When the hydrino is created through a reaction between hydrogen and a catalyst, according to Mills, it lets go of more than enough energy to fuel electrolysis in common water, thus producing more hydrogen. The excess energy — the majority — would go to producing electricity. The only outside ingredients needed are a catalyst, to turn the hydrogen to hydrinos, and heat (which would also be generated once the reaction had started). And the hydrinos created by the process? They’re non-reactive and can be released to float up into space, as they’re lighter than helium. Or, even better, they can be processed into unique chemicals with a range of useful applications.

        
                Unfortunately, the resting state of hydrogen is the lowest energy state ever demonstrated, and quantum physics doesn’t accept that hydrogen could be pushed to a lower state; therefore, most quantum physicists declare the Blacklight process is nonsense. Most members of the scientific establishment aren’t even willing to look. Douglas Osheroff, a Nobel-winning physicist at Stanford, put it to me rather succinctly: “People understand the hydrogen atom probably better than anything else. We know the electron around the hydrogen atom is in a 1s [minimum] orbit. [Mills] can claim there’s a lower energy state, but I don’t think you’ll find anybody who’s willing to pursue it,” he said.

                For fifteen years, the scientific controversy cropped up occasionally, until 2006, when VentureWire ran a lengthy story on Blacklight raising $50 million from private investors. Afterward, the company fell more or less silent, with the exception of scientific papers released by Mills and others, and an updated version of his book, The Grand Unified Theory of Classical Physics.
               Earlier this week, the company suddenly broke its silence — this time with an announcement that it had not only mastered the hydrino, but had built a prototype reactor capable of generating 50 kilowatts of energy, for the outrageously low cost of one cent per kilowatt-hour. Coal, at its very cheapest, is more expensive than that; and, for comparison, the most efficient forms of solar generation are struggling to reach 10 cents per kWh.

               Intrigued, I got on the phone with a company representative, who asked not to be directly quoted, but who confirmed the claims. In a separate email, Mills said that the breakthrough had come about a year ago, with his invention of the catalyst. Making an announcement today, he said, came from a “business decision to be more transparent to facilitate validation and business development.”
 
               Blacklight’s claim, then, has shifted rather dramatically, from pushing science only a quantum physicist could argue against, to — at least according to their own accounts — showing off a physical process to electrical utilities and others. A prototype plant in New Jersey will be complete in 2009, and the technology will be licensed out, they say. Meanwhile, the company is scaling the process to plants larger than 50KW.

               That all seems pretty farfetched, but the company reiterated to me that Blacklight has raised a very significant amount from hedge funds and private investors, and has a board full of notables. For confirmation, I was directed to Randy Booker a physics professor at the University of North Carolina. Booker, who said Greenpeace had asked he and another faculty member to evaluate the technology in 2005, has been to the Blacklight lab in Cranbury, NJ several times to validate the process.


                Booker told me over the phone: “They put in energy, and the yield is about 50% more than what they’re putting in. I’ve also validated their scientific methods, and it seems like they’re doing everything right, from the measurements to procedures.” He adds: It’s nothing small or miniscule, it’s very obvious.” What Mills has come up with is a “new, revolutionary theory” that can go beyond quantum physics, Booker concluded.



               Conclusive? Not really, at least in my view. There’s little chance a journalist will unravel a scientific controversy in its second decade. However, what’s interesting is that it seems Blacklight has put itself on the path to final validation, or failure, within the next couple years. Theories are difficult to kill, but a power-generating process is fairly easy to prove — does it release energy, or not? Booker, for his part, says he hasn’t seen the 50KW reaction, but did see a smaller two kilowatt demonstration.
 
               And while scams are common on the small-cap public stock exchanges, Blacklight isn’t publicly traded and doesn’t appear to be looking for money, which raises the question of why it would claim a nonexistent commercial process. On the other hand, if the process is real, only a public demonstration is likely to convince its opponents.
 
               But, just in case any scientists want to dig in, the full list of Blacklight’s scientific studies is available here; the most recent is entitled Commercializable Power Source from Forming New States of Hydrogen. And although Mills has had trouble claiming patents in the past, two are listed as granted on the USPTO website: 7,188,033, on rendering the chemical bonds of hydrogen, and 6,024,935, on methods for releasing energy from hydrogen atoms. Readers are welcome to speculate.
  
by "environment clean generations"

Portable Power




Have you ever owned a solar powered calculator? Depending on where you live and where you keep it they do work fairly well but are nothing like as efficient as the new solar-powered devices available today.

              One of the many benefits of solar power is that it adapts well to portability. You have seen the solar panels on vehicles in space and on recreational vehicles on terra firma providing power to those who want to travel to the far flung corners of the universe. 

              This is a fast developing technology which needs to keep pace with the rash of new devices on the market like mobile phones and MP3 players – did you know that you can now obtain a good quality solar charger for you i-pod?

              This is an excellent way to reduce the load on the national grid and people should be encourages to turn to solar power wherever the possibility lies – all you need, after all, is sunlight and some solar cells.

              The common response is that phone chargers etc don’t use much power, which is true, but how many phones and other similar devices are being charged in your home right now? And in how many homes?

              When you add it up there is a strong case for solar powered chargers. Not that this is the only use for solar power. Just as you may be able to enjoy cheap power when you holiday at some remote spot by using the solar panels on your RV, consider the people who live permanently in such out of the way locations where they may not even have access to normal power lines. Solar power – or possibly wind turbines though these tend to create as much noise as they do power – is a real boon for them giving quiet, clean access to electricity from the sun's rays.


by "environment clean generations"

Solar Energy


               
                 Every hour the sun beams onto Earth more than enough energy to satisfy global energy needs for an entire year. Solar energy is the technology used to harness the sun's energy and make it useable. Today, the technology produces less than one tenth of one percent of global energy demand.
                 Many people are familiar with so-called photovoltaic cells, or solar panels, found on things like spacecraft, rooftops, and handheld calculators. The cells are made of semiconductor materials like those found in computer chips. When sunlight hits the cells, it knocks electrons loose from their atoms. As the electrons flow through the cell, they generate electricity.

                 On a much larger scale, solar thermal power plants employ various techniques to concentrate the sun's energy as a heat source. The heat is then used to boil water to drive a steam turbine that generates electricity in much the same fashion as coal and nuclear power plants, supplying electricity for thousands of people.
                 In one technique, long troughs of U-shaped mirrors focus sunlight on a pipe of oil that runs through the middle. The hot oil then boils water for electricity generation. Another technique uses moveable mirrors to focus the sun's rays on a collector tower, where a receiver sits. Molten salt flowing through the receiver is heated to run a generator.

               
                 Other solar technologies are passive. For example, big windows placed on the sunny side of a building allow sunlight to heat-absorbent materials on the floor and walls. These surfaces then release the heat at night to keep the building warm. Similarly, absorbent plates on a roof can heat liquid in tubes that supply a house with hot water.
                Solar energy is lauded as an inexhaustible fuel source that is pollution and often noise free. The technology is also versatile. For example, solar cells generate energy for far-out places like satellites in Earth orbit and cabins deep in the Rocky Mountains as easily as they can power downtown buildings and futuristic cars.


                    But solar energy doesn't work at night without a storage device such as a battery, and cloudy weather can make the technology unreliable during the day. Solar technologies are also very expensive and require a lot of land area to collect the sun's energy at rates useful to lots of people.
                    Despite the drawbacks, solar energy use has surged at about 20 percent a year over the past 15 years, thanks to rapidly falling prices and gains in efficiency. Japan, Germany, and the United States are major markets for solar cells. With tax incentives, solar electricity can often pay for itself in five to ten years.

                   At a time when all forms of exhaustible source of energy like coal, oil and electricity are on the verge of complete exhaustion, energy requirements across the globe are becoming a hindrance in commercial progress, an ever increasing number of nations are marching towards adopting “Project Sunshine” which entails enriching solar power assets, to bring a turnaround in the economic restructuring. Some of Europe’s prominent nuclear research facilities are moving towards sustainable forms of energy. Sensing the immense opportunities in the global solar PV market, many rival nations have made significant investments in solar technologies to increase productivity and sustain their competitive position.

                     The international solar cell market increased seventeen times from 1994 to 2004.During this period, Japan, Europe and United States dominated the production of solar technologies. In contrast to nineteen percent expansion in 2005, the solar cell set up reached 1744 megawatts in 2006.This led to a $10 billion growth in the market worth. The solar cell manufacture in 2007 touched 3436 megawatts as opposed to 56% rise during 2006.
                     China initiated their research in solar technologies as early as 1958. During the late 1980s , China launched a variety of solar cells .This resulted in an increased capacity of 3KW which caused many small producers to enhance their plants from 4 to 4.5MW.The production capacity was limited to 2 MW till 2002. Thereafter, the European market jumped in and the German firm Wuxi Suntech Power, with their swift power generation came into the picture and made inroads into China exhibiting unprecedented growth in PV industry pioneering speedy development.

                  As of now China is the principal solar technology manufacturer. In 2007, there was n exponential jump of 293 percent to achieve 1188MW capacity. Europe and Japan have long been dethroned by China to become the photovoltaic cell producing superpower. The Chinese solar power industry transformed to a stronghold. Yangtze River Delta, Bohai Bay, Pearl River Delta, central and western provinces have emerged as an exclusive solar hub. Despite the successes in the last decade, China started its solar energy exploration two decades after the global players. Many countries have substantially hiked their funding, but it isn’t adequate to bridge the prevailing gap. The authorities must push stronger reforms through strategic and administrative stimuli in solar energy sector and address the pricing concerns. Although there’s been substantial upsurge in use of solar power in public places and official settings, the acceptance in the internal market will come through exceptional governmental impetus and a robust growth.

                 Solar PV energy will not only emerge as an alternative to various non-renewable forms of energy, but will also become the primary global energy source in years to follow. Solar energy is projected to meet ten percent of the total global energy consumption in 2030 and thirty percent of total renewable energy will be the solar energy. In 2040, the green energy will meet fifty percent of the world requirement and solar power will form twenty percent of the consumption.

                 Thereafter, in the twenty-first century, alternative energy sources will contribute to 80% total power requirement and solar energy will amount to 60% or more. These numbers are a mere reflection of the vital role that solar technology is slated to play and the extraordinary potential that this industry can boast of.
eath4energy-home-electricity.maxupdates.tv



by "environment clean generations"

Power from water




               The world’s first commercial wave farm went live at the end of September in Agucadoura, located off the coast of northern Portugal. Designed by Pelamis Wave Power, the farm employs three Wave Energy Converters– snakelike, semi-submerged devices that generate electricity with hydraulic rams driven by waves. This first phase of the new renewable energy farm is rated at 2.25 MW with 3 machines, and the the second phase will add an additional 25 machines to bring the capacity to 21 MW – enough to power 15,000 homes!

              We’ve been following the Pelamis Wave Power project since last year and are very excited to see it come to fruition. Each Pelamis Wave Energy Converter measure 140 meters long and 3.5 meters in diameter, so they do take up significant amount of space out in the ocean. Still, the potential from this energy source is huge – the world’s waves are estimated to generate 2 Terawatts of power. To put that in perspective, the US currently has a generating capacity of just over 1 TW.

             Pelamis Wave Energy Converters are tethered to the ocean floor by cables and are pointed perpendicular to the coastline. Each device is composed of several sections connected with articulated joints. As the waves roll in past the device, each section is driven up and down, while the hydraulic rams inside resist the motion. This resistance pumps high pressure fluid through hydraulic motors, which drive electric generators, thereby producing electricity. This electricity is then transmitted via underwater cables to the mainland.
 
             Naturally, the amount of electricity generated depends upon the power of the waves at any given time, so like wind and solar energy, the electricity generated is not on demand. It’s an exciting renewable resource however, and Portugal’s new wave farm marks an important first step towards proving the technology, creating demand, and driving down the price. Soon you might see these off your local beach, assuming the conditions are right.

                America is getting its very first wave power farm! Ocean Power Technologies, a New Jersey-based firm, is currently installing giant buoys off the coast of Reedsport, Oregon. Once all ten buoys are in place, developers hope to use them to harness the energy of wave motion and generate power for hundreds of area homes. 

                Each buoy will measure about 150 feet tall by 40 feet wide and weigh in at about 200 tons. A float on each craft rises and falls with the rolling of the waves, driving an attached plunger’s up-and-down movement. A hydraulic pump then converts that movement into a spinning motion, which drives an electric generator. The electricity produced by the generator moves from sea to land via submerged cables. Right now, developers are finishing up construction on the first buoy, and it will take about 60 million big ones to finish up all ten. Once the entire system is on place, about 400 homes will derive their power from Oregon’s coastal waters.

         Construction of the first buoy is an encouraging development, but the system still has some challenges to overcome. For one, wave power  currently costs about six times that of wind power (although once the technology is optimized it should see comparable prices, especially because waves are more predictable than wind or solar power). Secondly, keeping the buoys in place and free from damages caused by big waves can be tricky.  
                                                                                                                              
                And so far, wave power’s history doesn’t paint the most promising picture: The world’s first commercial wind farmopened in 2008 in Portugal, but power production was suspended due to financial difficulties. Moreover, two years ago, a Canadian-produced wave power device sank off Oregon’s coast.                Still, if engineers can master the art of cost-effective wind power, it would be a huge boon for the renewables field. Waves  are both free and predictable, so harnessing them to generate electricity would be great. Other wind farm projects are currently underway in countries like Spain, Scotland, Western Australia and England. If all goes according to plan,Oregon's wind farm will see completion by 2012.



by  "environment clean generations"

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