According to Schmehl, airborne energy production can be cleaner, cheaper and more effective than conventional wind power generation. "It's now clear that the world needs more energy from renewables. And we need the progress to be faster. Wind is an important resource that so far has been limited, because conventional wind turbines just scratch off the bottom layer of what is actually available in the atmosphere."While a normal wind turbine is up to 200 metres tall, a kite can catch much higher currents. "We operate between 100 and 300 metres but kites can in fact fly much higher. So far, the altitude record is 9,740 metres," says Schmehl.
Kite wind generation overcomes the problem of intermittent power, typical of conventional wind technologies, for one simple reason: the higher you go, the more constantly the wind blows. Airborne wind turbines provide a more stable energy flow, and they are much cheaper as they need less material than a wind turbine. Instead of a steel tower, you have a system that looks and works like a yo-yo.
"You have a cable going into the sky with a flying harvesting device. Our group has focused on kite power, and specifically the pumping kite power system. We use the traction power of a kite sail to pull a cable from a drum that drives a generator on the ground.
Once the cable has completely unwound it needs to be reeled in again, which requires a certain amount of energy. "You have to design the pumping cycle so as to have a traction and a retraction phase," says Schmehl. He and his team came up with a solution to minimise energy losses. "We rotate the kite into the wind as we pull it back, so essentially the airstream does part of the work for us. This way, we need less energy to reel in the cable."
Thursday, 1 August 2013
Flying a kite for aerial wind power
World's Biggest Offshore Wind Farm Switched On in Britain
Around a year and a half ago, the Walney wind farm in the Irish Sea started spinning and prepared to relish the title of being "biggest in the world." It ended up enjoying that status a bit longer than expected, but the London Array, off the coast of Kent, now leaves Walney and its 367 megawatts in the dust.Some numbers: 175 turbines. 630 megawatts. Half a million homes. 100 square kilometers. 450 kilometers of offshore cabling.
In other words, it's pretty big. The speed at which these enormous projects are popping around in the waters around the U.K. is impressive, especially considering the ongoing difficulties with getting even a single offshore turbine up and running in the U.S. (Cape Wind might have one by next year! Maybe!) There are now around 20 distinct offshore wind farms around the U.K., generating enough power for 2.3 million homes; when all offshore turbines that are spinning, in construction, or planned are combined, they total 15 gigawatts of capacity—about a quarter of the entire U.S. onshore wind power capabilities.
The London Array, owned by DONG Energy, E.ON, and the U.A.E.'s Masdar, looks to keep it's world's-biggest title for a bit longer than Walney held out, thanks to its already massive size and a phase 2 plan to bring it up to a full gigawatt. And some of the other big projects underway in the region won't be able to compete with that sort of girth: West of Duddon Sands farm will get to 389 MW, for example, while the Gwynt y Mor farm off the coast of Wales will reach 576 MW.
ReNews also has a report on a new 1.2GW wind farm planned for offshore the east coast of England - Hornsea enters the fray.
Smart Wind has submitted its application for the 1.2GW Hornsea phase one wind farm off the east coast of England. ... Hornsea Project One formally consists of the 600MW Njord and the 600MW Heron project. Offshore construction on both projects could start as early as 2016.
Wednesday, 31 July 2013
Deep Water Wind Energy Could Power EU 4 Times Over
A new report from the European Wind Energy Association (EWEA) states the power produced from turbines in deep waters in the North Sea alone could meet the EU’s electricity consumption - four times over."Offshore wind in Europe could be providing 145 million households with renewable electricity and employing 318,000 people by 2030, while providing energy security, technology exports, and no greenhouse gases," says the EWEA.
'Deep Water' in relation to wind turbines is considered to be depths of 50 metres or more. While the technology is still reasonably new, floating wind turbine designs are competitive in terms of the levelised cost of energy (LCOE) with bottom-fixed foundations in depths exceeding 50 metres.
Of all Europe’s grid connected offshore wind turbines currently in service, only two are not reliant on fixed foundations.
Acknowledging that the sector must overcome significant technical, economic and political challenges in order to properly tap deep water wind resources; the EWEA says if the challenges are overcome, the first deep offshore wind farms could be up and running by 2017.
Even at the shallow end of the pool, offshore wind power in the EU is a very big business. At the end of last year, 1,662 turbines totalling 5 GW capacity were operating in 55 wind farms in 10 European countries; producing 18 TWh of electricity - enough to power almost five million households.
Friday, 26 July 2013
Wind Now Cost Competitive With Coal in India
Wind power is now cost competitive with new coal-fired generation in India, according to a report from HSBC [pdf]. Falling costs are just one reason for the increased interest in wind. For the first time, India has identified water as a scare natural resource in its most recent five-year plan. Nearly 90 percent of India’s industrial water demand comes from thermal power plants, according to the HSBC report.The appeal of some renewables, such as wind and solar photovoltaic, is that they use far less water than coal, nuclear, or natural gas power plants. Across the globe, water stress is growing within the energy industry and power plants have to partially shut down when there isn’t enough water for cooling. In India, water shortages just before monsoon season in 2012 forced hydro generation and thermal power plants to partially close.
India needs all the power it can get. Last July, a sweeping power outage left about 700 million people without power. Outages are a daily occurrence in India, although usually not at that scale, because of a dearth of generation coupled with an outdated grid. The Central Electricity Authority estimates India has a peak deficit of 12 gigawatts.
The latest five-year plan calls for a doubling of renewable energy from the previous plan, including 15 gigawatts of wind, 10 gigawatts of solar, 2 gigawatts of small hydro and nearly 3 gigawatts of biomass. Individual Indian states have also instituted solar and wind installation targets.
Monday, 22 July 2013
First Floating Wind Turbine In The U.S. Deploys In Maine
The first floating wind turbine in U.S. history went upright and onto the water in Brewer, Maine, on Friday, on its way to being put in place and connected to the grid off the coast near the town of Castine.The 65-foot-tall VolturnUS 1:8 prototype is a small-scale model of the giant 6-megawatt turbines the University of Maine’s Advanced Structures and Composites Center and its partners in the DeepCWind Consortium hope to have in the water someday. Deep-water wind supporters in Maine believe that by 2030 they can grab 5 gigawatts of power with arrays of large turbines up to 50 miles off the coast, away from conflicts and where the winds blow strong and consistent. ...
Floating turbines are seen as a next logical step in offshore wind development. Standard offshore turbines are nearly always installed in waters less than 30 meters deep, but deeper water accessible only with floating turbines could offer even better wind as well as fewer stakeholder and aesthetic conflicts. A couple of demo floating projects have launched in Europe, one by Energias de Portugal and Principle Power off Portugal and the world’s first, in 2009, Statoil’s Hywind.
Beyond this smaller-scale pilot, DeepCWind is planning to build two of the 6-megawatt full-sized turbines in the 2015-17 period. To aid in that effort, this past December the U.S. Department of Energy gave the university a $4 million grant (at the same time it backed the Oregon floating project), and other such projects are brewing around the world.
Ultimately, the Maine group aims to have some 80 turbines floating in 4-mile by 8-mile zone 20 miles from the coast. The team figures those turbines will be able to produce electricity at 10 cents per kilowatt-hour without subsidies, meeting a 2020 goal of the DOE.
Tuesday, 16 July 2013
New GE Wind turbines Include Energy Storage
Wind companies are always trying to making their next turbine spin more efficiently and generate more power than the last, just as car companies are looking for better fuel efficiency and engine power. Advances usually come in small jumps in both cases, with a single percentage improvement cause for celebration.GE announced a new line of wind turbines in May that generate between 20 and 24 percent more power than the previous best turbine in its class. It does this through traditional improvements in turbine design, but also through innovations that address one of the main issues that critics of wind power raise: intermittency.
The wind does not blow all the time, and the electric grid needs a regular supply of electricity. Wind has been a critical and climate-friendly addition to the grid portfolio, but as the industry continues to expand, people have started to think about what happens when more and more of our electricity is generated from intermittent renewable sources like wind and solar. Fossil fuel advocates try to make the case that coal and gas (and oil) can be burned constantly, but this is becoming less and less tenable. Rising carbon emissions are triggering extreme weather and sea level rise that endanger the very reliability of the electric grid.
Can advances in technology allow renewable energy sources to be reliable for second-to-second grid use? It’s already happening. In 2011, a concentrated solar plant produced power for 24 hours straight. A huge array of mirrors heated up a huge molten-salt battery system that permitted the solar plant to supply power when the sun was down. Reliable, steady wind energy is also becoming a real thing.
GE’s Brilliant 1.6-100 and 1.7-100 wind turbines are different from previous efforts because they use a short-term, grid-scale battery storage system paired with an “industrial internet” — a sophisticated system that is able to predict when power will be needed and when the wind will be blowing. It’s also bigger. All of this increases efficiency and capacity factor, or how much energy a turbine actually can produce. ...
So where are these cutting-edge turbines headed? Sixty-seven of them will be built for installation in the mountains of New South Wales in Australia in the fall of 2013, with power expected to be flowing into the grid by the end of 2014. Fifty-nine of them are headed to the “thumb” region of Michigan as part of a wind farm planned by NextEra Energy Resources. And Invenergy Wind is building a farm in Mills County, Texas that will feature three 2.5 MW GE Brilliant turbines.
Tuesday, 11 June 2013
Google Acquires Wind Power Firm Makani Power
Google is known for putting its resources into some novel technologies like self-driving cars and wearable computing devices. Now, the Web giant is moving into yet another field—wind power. After previously investing in the company, Google has agreed to acquire Alameda, Calif.-based green energy startup Makani Power. ...Makani, which takes its name from the Hawaiian word for breeze, develops airborne wind turbines that are mounted on self-piloting flying wings tethered to the ground like a kite. Google will bring the Makani team into its secret "moonshot" research lab Google X, which produced Google Glass. "This formalizes a long and productive relationship between our two companies, and will provide Makani with the resources to accelerate our work to make wind energy cost competitive with fossil fuels.
In a statement to PCMag on Thursday, Google confirmed the acquisition and said it's eager to bring Makani on board. "Creating clean energy is one of the most pressing issues facing the world, and Google for years has been interested in helping to solve this problem," Google X Director Astro Teller, said in the statement. "Makani Power's technology has opened the door to a radical new approach to wind energy. They've turned a technology that today involves hundreds of tons of steel and precious open space into a problem that can be solved with really intelligent software. We're looking forward to bringing them into Google[x]."
Makani said the timing of the acquisition "couldn't be better" since its so-called Wing 7 kite-power prototype just completed its first ever fully autonomous flight. The startup has said its wing-shaped high-altitude kite design can produce 10 times more energy than conventional turbines.
Wednesday, 30 January 2013
Belgium plans artificial island for wind energy storage
Belgium is planning to construct an island in the North Sea for the sole purpose storing wind energy.Wind farms, when constructed using traditional mainstream methods, will eventually require backup as their electricity market penetration increases, and when wind turbines generate surplus electricity due to unusually high wind speeds (which can happen pretty often) it goes to waste.
“We have a lot of energy from the wind mills and sometimes it just gets lost because there isn’t enough demand for the electricity,” said spokeswoman for Belgium’s North Sea minister Johan Vande Lanotte. “This is a great solution,” the spokeswoman said, adding she thought it could be the first of its kind.
Excess wind power would be used to pump water out of the centre of the island, and it would be allowed to flow back in, but through an electricity generating turbine to augment overall electricity production when there is a shortfall of wind energy. Vande Lanotte revealed these plans at the Belgian port of Zeebrugge late on Wednesday.
Large-scale wind energy storage has been mostly just a thought for many years, worldwide, but Belgium decided to step up to the plate and put it to the test.
Sunday, 9 September 2012
Wood Could be the Future of Wind Turbine Masts
In a bid to lower the costs of wind turbine masts, as well as enable taller installations, a German engineering firm is pursuing a novel method of building them - using wood instead of steel.The new design for wind turbine masts uses timber and laminated wood panels (all from sustainable and certified timber suppliers) for the structure, covered by a plastic skin to protect the wood from weather, and the company, TimberTower, claims that their wooden masts will save 300 tons of steel for each 100 meter tall tower.
TimberTower believes that their new design could revolutionize the wind power industry by not only lowering the cost associated with turbine masts, but also by enabling the building of towers with turbine heights up to 200 meters high, as they can be easily transported via standard cargo containers and assembled in place.
Sunday, 22 July 2012
Global Exergy Resource Chart
Tuesday, 3 July 2012
Go Go Gadget: Robotic Crawler Rides Up 300-Foot Poles to Inspect Wind Turbine Blades
checking machinery propped 300 feet high and buffeted by the weather can be tricky. Take wind turbines. An inspector in the field must brake the turbine, rotate the blades, and inspect and photograph any potential defects through a telescope. The process can take up to four hours.Engineers at GE’s Global Research Center tried something different. They partnered with a New York robotics company called International Climbing Machines (ICM) that developed a remote-controlled wall climbing robot, and strapped a wireless high-definition video camera to its back. The device can scale vertical, 300-foot high steel turbine poles in minutes, photograph turbine blades, and beam the results back to earth.
Saturday, 2 June 2012
Are the lights still on in South Australia ?
Yesterday, I called a friend of mine in Adelaide. Beyond the usual niceties to start the call my first question was: ‘is the power out?’ Perplexed, he answered in the negative, no doubt wondering whether I had control of my faculties.It was a strange first question to come from a friend you haven’t spoken to for a month, after all. Especially from an avid Richmond supporter after the team’s biggest win in years. But I was concerned for the state of South Australia after receiving some interesting news during the day – wind now makes up 31 per cent of the state’s power supply, with solar PV accounting for another 3.5 per cent.
According to a leading energy advisory firm (Energy Quest), wind already “appears to be the new baseload.” Not bad in spite of the campaign against wind by they-who-shall-not-be-named. But while green groups were likely dancing in the streets, I was worried the lights in those streets might have gone out. I have been told for years that wind and solar are not capable of supplying power consistently enough to power one house, yet alone be able to supply a third of the energy needs for an entire state.
It appears to be all a Y2K-like false alarm however, with everything operating as normal. ...
Not only are wind and solar playing increasingly significant roles in the power grid, but they are also helping to make wholesale electricity prices cheaper. In the March quarter, wholesale electricity prices were between 30 and 60 per cent cheaper in the eastern states compared to a year ago. Energy Quest said the reasons for the wholesale price falls were “lower demand for grid power and the growth of wind and solar.”
South Australian wholesale prices fell 50 per cent, while the country’s most heavily reliant coal state, Victoria, only realised a price fall of 31 per cent. Average wholesale prices in Victoria, the only eastern state to have coal increase its output for the quarter, fell to $24.53/MWh from $35.50/MWh. South Australian prices fell to $26.17/MWh from $51.82/MWh. The gap is closing rapidly.
Obviously the switch to a sustainable energy future is a gradual one to be made over decades, not in the next year or two. But the progress with renewable energy in South Australia is promising and shows that with a friendly policy environment – for example, no 2km wind farm exclusion zones – great strides can be made.
Thursday, 24 November 2011
Which way will wind power blow ?
By nearly any metric, 2011 has not been a particularly good one for Vestas, the world’s biggest wind turbine marker. Lower than expected demand for wind turbines, and fierce competition from rivals, particularly in Asia, has pushed the company to a third quarter loss and forced it to abandon its long-term financial goals – its so called Triple15 plan of €15 billion in revenue and an EBIT margin of 15 per cent by 2015. The outlook – clouded by the sovereign debt crisis in Europe, a slowdown in wind turbine development in China, and the likely removal of a crucial tax credit in the US – has helped push its shares down 55 per cent in the year and nearly 90 per cent from their 2008 peak.
Vestas CEO Ditlev Engel, however, says that the best days of wind are not over. In an interview with Climate Spectator, Engel says the Danish company can match the Chinese (and says it already sells more turbines in China than the Chinese sell outside of their country), and will play a critical role in future energy needs.
Engel says Australia has a magnificent wind resource which is as valuable as the resources that lie in the ground. But it is unlikely that Vestas will consider reopening the wind place and nacelle assembly plants it closed a few years ago.
He also says gives his views about technology development, and how the youth of today will have a different approach to energy than the current generation. ...
GP: You also face immense competition from Asia, particularly from Chinese wind companies. I guess to guarantee your long-term future you’ve also got to make certain of your short-term future as well. Are you confident you can match the Chinese?
DE: We have to remember that Vestas has 3000 colleagues in China and we went into China in 2006 and we built a number of plants there. That means that if the rules of the game going forward, for instance, are that everything should be used in China and shipped around the world, Vestas can definitely do that as well. Now, because of the magnitude of the products, but also, of course, the transportation costs, etc, etc, we don’t think that’s really going to happen. But actually, if you add up the numbers, if you look at 2010, Vestas sold more megawatts in China than all of the Chinese combined sold outside China.
GP: If you can’t beat them, join them, as it were.
DE: Well, China is of course the world’s largest wind market, but if you look just here in 2011, I think we have already seen that the Chinese market has not grown to the level that it had done in the previous year, so I would say it’s getting into a more a normal stride now going forward than the very steep road that we saw just over the last few years. ...
GP: Where do you think growth in the wind market is going to be? Is it going to be in onshore or is it going to be in offshore?
DE: In Australia, you guys have so much land, so since it is much cheaper to install them onshore instead of offshore, then I’m sure that onshore is going to be the name of the game in Australia. And you also have to remember that the onshore wind resources you have in Australia are phenomenal. I mean, again, a lot of people know that you have a lot of resources in mining and so on and so forth. Having fantastic wind resources onshore as you have in Australia is as good for the future economic security as having a lot of resources in the ground and you just have them up in the air as well, but people don’t think about it this way.
GP: Sure. Can you tell us about the size of the turbines of the future? Will they continue to just get bigger and bigger or will there be…?
DE: I don’t think so. From a transportation, cost efficiency point of view, I think we are at the peak now. The turbines we are sending for Macarthur are called the V112 which is I think sort of the largest we are going to see. And for practical reasons, shipping reasons, transportation, I think we are at the edge, now, onshore. I think we’re going to get bigger and we have for offshore; we have a launch that’s a seven megawatt turbine, but that is so large that it has to be manufactured at a port very close for installation, so if you’re going up in that scale, you need to have a significant offshore market just around the corner like, for instance, we have in the UK.
So, I think we are at the peak now, and because of the cost of materials, the lighter you can make the design, the smarter you can make the design and thereby reduce the consumption of materials, the more you can lower the cost of energy. So, in the old days it was about, you know, making them just bigger and bigger. I would say going forward it’s about keeping them at this size and then keeping making them lighter, because that will keep on checking out the total cost of the manufacturing.
Saturday, 19 November 2011
South Korea to build 2.5 GW offshore wind farm
South Korea's Korea Electric Power Corporation will build a $9 billion, 2.5-gigawatt offshore wind farm off the southwest coast of the Korean peninsula by 2019, the Ministry of Knowledge Economy said in a statement.
According to the ministry, the 51-percent government-owned Kepco will be buying wind turbines from eight local suppliers including Doosan Heavy Industries and Construction, Daewoo Shipbuilding and Marine Engineering, and Hyundai Heavy Industries.
The wind farm project will be built in three phases, beginning with a $355-million demonstration project by 2014 which will consist of turbines having the capacity of between 3 and 7 megawatts.
The second phase 400-MW demonstration project will have an investment of $1.42 billion by 2016. To complete the third phase is a $7.26-billion investment to build a 2-GW wind farm by 2019.
Monday, 7 November 2011
Wind like Spain? It's a no-brainer
Wind power has the support of the majority of Australians, so it's painful to hear a small minority, most of them backed by fossil fuel interests, undermining one of the great universally available energy sources to power the world out to 2100. It is telling that the technology has very few detractors in those countries that aren't big net fossil fuel exporters.
As of this year, Spain has 20,000 wind turbines. If these were transplanted to Australia they would easily power our biggest state. That’s because wind turbines in Australia produce twice as much electricity as those installed in Spain, due to our superior resource.
With over 21,000MW capacity installed, Spain is 18 per cent wind powered and, with annual electricity demand the same as Australia's, is doubling their wind capacity by 2020. It's still full steam ahead on Spain's renewables program, despite a housing boom/bust that has sent their economy into a tailspin and caused over a million construction workers to lose their jobs.
Spain enjoys lower wholesale energy prices thanks to wind power, due to the merit order effect. Wind power significantly drives down electricity prices – and Australians, in 2011, are still missing out on the benefits of the price-lowering effect that large-scale wind deployments can deliver.
Using a fleet of modern Enercon E-125 or Siemens 6MW wind turbines, for the same installed capacity we would generate twice the amount of annual electricity generated, and we'd get twice the annual contribution of wind to our electricity mix. In other words we'd be on 35 per cent renewable electricity today.
It's a no brainer; to achieve the same amount of electricity as Spain from wind would come at a 75 per cent discount to what the Spanish have invested. That's because of the combination of "buy one get one free" – our wind resource generates twice as much as theirs and we're starting in 2011, 15-20 years after the Danes, Spanish and Germans who have done the heavy lifting and got the technology down the cost curve. Add to that the bonus that comes from the much cheaper turbines coming out of China exerting downward pressure on European turbine prices and you have a very cheap, well tested renewable resource. Time to get on with the job.
I’d hate to call it bludging, but we are also benefiting from the heavy lifting of countries like Denmark, Germany and Spain through their deployment programs to date. These European leaders have really got wind turbines (along with other renewable technologies) down the cost curve through the optimum combination of deployment – learning through doing and public and private research and development.
Many of Spain's turbines are older models. The new ones are more efficient, taking up as much as a third less space on the ground than much of the fleet in Spain, leaving more area for existing uses such as cropping. Australia, with 15 times the land area, and a huge choice on wind resource, could achieve 50 per cent wind with as few as 7,000 modern turbines. Or, with the same installed capacity as Spain, we would be getting 40 per cent of our electricity from wind and at a 75 per cent discount.
The potential for Australian wind doesn't stop there. Spain is on target to double their wind capacity to 35 per cent by 2020. With a practical near-term target like that we know that Australia could easily be getting 50 per cent of our energy from wind in a similar timeframe, with our combination of favourable conditions, less turbines, better sites, twice the output, half the cost, much bigger land area, better opportunities geographical distribution leading to better meteorological diversity, as well as much lower density of population and easier to access sites.
But Spain will actually have enough wind turbines to produce 70 per cent of our electricity by 2020. So what would happen if we installed that much capacity of wind here? Studies have already been done that give us an idea: they show that in the UK and Denmark, with 40 per cent penetration, 4 per cent of wind is actively curtailed and at 50 per cent, 7 per cent is to be curtailed.
That is, if we install wind turbines across the grid with an annual capacity factor so they are able, theoretically, to deliver 54 per cent of our electricity, due to a number of hours of oversupply and some transmission constraints, 7 per cent active curtailment would mean that 50 per cent of our energy would actually come from wind.