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

Thursday, September 6, 2012

Renewable Globe Solar and Wind Company Directory


Today marks the officially launch of both the solar and wind company Renewable Globe company database. After pushing through thousands of companies, two lists have been formed giving access to an international list of solar and wind companies. In order to access these lists please visit: Solar Companies and Wind Companies.

The lists are organized in alphabetical order as shown in the image below:




By clicking on each of the different letters, you will find yourself searching for the first letter of the first word in each company name. You will also find stock symbols and the countries each company is located in. We hope this will act as another resource for everyone as we fight to spread the word about renewable energies.

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Thursday, August 30, 2012

Luther College and Decorah, Iowa, Partner to Help Create a Clean Energy Future


The Energy Department is excited to announce a new video series, "Energy in Our Community," which will feature small communities throughout the country that are striving to become more sustainable, are investing in the green economy, and are bringing the benefits of clean energy to local residents and workers. The Department kicked off the series with a video from Luther College that highlights how Decorah, Iowa, is benefiting from the projects undertaken by the college to reduce its energy waste and deploy clean, renewable energy projects campus-wide.
"'Clean Energy in Our Community’ will highlight small communities around the country working to promote clean renewable energy initiatives and how our colleges and universities in particular play a critical role in shaping our communities and driving America’s clean energy economy," said U.S. Secretary of Energy Steven Chu. "Luther College and Decorah, Iowa, are great examples of how our local communities can help lead the way in making sure that America wins the global clean energy race."
Luther College installed a 1.6 megawatt wind turbine last fall. This summer Luther established the largest zero-emission facility in Iowa by using a 280 KW solar field to power a 100 plus student residential housing complex that uses geothermal energy to heat and cool the facility. Luther has also created an Office of Sustainability, which is helping the college reach its goal of cutting its carbon footprint in half by 2015 and becoming carbon neutral by 2030. 
Along with these commitments, Luther helped others in Decorah, Iowa, establish the Winneshiek Energy District, which has helped the residents of Winneshiek County invest more than $1 million dollars in energy efficiency programs over the past two years.
Decorah and Luther College are not the only communities that are working every day to invest in the clean energy economy. Small communities across the country are continuously building partnerships to become more sustainable, relying on clean energy resources to meet their energy needs. These partnerships often include schools, nonprofits, and local governments.
The Energy Department is committed to supporting communities like Decorah as they invest in clean renewable energy that reduces carbon pollution, creates local jobs, and helps to drive local economies. This series will help connect and feature our small communities nationwide that are investing in clean energy and playing a role in making sure the United States leads the world in the global race for the green jobs of the future.
Stay tuned as Energy.gov continues to highlight communities committed to creating sustainability projects, increasing investments in the clean energy economy, and helping America win the global race for a clean energy future.



Posted originally by the Department of Energy. Please follow us on Twitter and "like" us on Facebook!

Tuesday, August 21, 2012

Atlantic City, NJ Wind Farm (ACUA)



Wind farm developer: Community Energy, Inc. & Jersey-Atlantic Wind, LLC
Location: ACUA Wastewater Treatment Plant, Atlantic City, New Jersey
Project includes five, 380 foot high turbines. Each turbine is capable of producing 1.5 megawatts for a total of 7.5 megawatts, enough energy to power approximately 2,500 homes. It is estimated that the energy produced by the wind farm will save the energy equivalent of 23,613 barrels of crude oil.
When operating at design wind conditions, the energy is used to operate the ACUA wastewater treatment plant, with any excess energy provided to the main power grid.
Estimated cost of the project is $12 million. Community Energy has received a $1.7 million grant from the NJ Board of Public Utilities, and had applied for a $1.92 million customer supply grant through Conectiv. The remaining costs are being funded by equity investments or debt financing.
Wind Farm has been operational since December 2005.
Wind turbines manufactured by General Electric


Check out this live webcam of the turbines below!
Not working? Go to: ACUA Wind Turbine

Camera Image

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Tuesday, August 7, 2012

HAWTS about VAWTS, Sandia Research on Off-Shore Wind Energy



Though VAWTs have been around since the earliest days of wind energy research at Sandia and elsewhere, VAWT architecture could transform offshore wind technology.
The economics of offshore windpower are different from land-based turbines, due to installation and operational challenges. VAWTs offer three big advantages that could reduce the cost of wind energy: a lower turbine center of gravity; reduced machine complexity; and better scalability to very large sizes.
A lower center of gravity means improved stability afloat and lower gravitational fatigue loads.
Additionally, the drivetrain on a VAWT is at or near the surface, potentially making maintenance easier and less time-consuming. Fewer parts, lower fatigue loads and simpler maintenance all lead to reduced maintenance costs.
Elegant in their simplicity
Sandia is conducting the research under a 2011 Department of Energy (DOE) solicitation for advanced rotor technologies for U.S. offshore windpower generation. The five-year, $4.1 million project began in January of this year.
Wind Energy Technologies manager Dave Minster said Sandia's wind energy program is aimed at addressing the national energy challenge of increasing the use of low-carbon power generation.
"VAWTs are elegant in terms of their mechanical simplicity," said Josh Paquette, one of Sandia's two principal investigators on the project. "They have fewer parts because they don't need a control system to point them toward the blowing wind to generate power."
These characteristics fit the design constraints for offshore wind: the high cost of support structures; the need for simple, reliable designs; and economic scales that demand larger machines than current land-based designs.
Large offshore VAWT blades in excess of 300 meters will cost more to produce than blades for onshore wind turbines. But as the machines and their foundations get bigger -- closer to the 10-20 megawatt (MW) scale -- turbines and rotors become a much smaller percentage of the overall system cost for offshore turbines, so other benefits of the VAWT architecture could more than offset the increased rotor cost.
Challenges remain
However, challenges remain before VAWTs can be used for large-scale offshore power generation.
Curved VAWT blades are complex, making manufacture difficult. Producing very long VAWT blades demands innovative engineering solutions. Matt Barone, the project's other principal investigator, said partners Iowa State University and TPI Composites will explore new techniques to enable manufacture of geometrically complex VAWT blade shapes at an unprecedented scale, but at acceptable cost.
VAWT blades must also overcome problems with cyclic loading on the drivetrain. Unlike horizontal axis wind turbines (HAWTs), which maintain a steady torque if the wind remains steady, VAWTs have two "pulses" of torque and power for each blade, based on whether the blade is in the upwind or downwind position. This "torque ripple" results in unsteady loading, which can lead to drivetrain fatigue. The project will evaluate new rotor designs that smooth out the amplitude of these torque oscillations without significantly increasing rotor cost.
Because first-generation VAWT development ended decades ago, updated designs must incorporate decades of research and development already built into current HAWT designs. Reinvigorating VAWT research means figuring out the models that will help speed up turbine design work.
"Underpinning this research effort will be a tool development effort that will synthesize and enhance existing aerodynamic and structural dynamic codes to create a publicly available aeroelastic design tool for VAWTs," Barone said.
Needed: aerodynamic braking
Another challenge is brakes. Older VAWT designs didn't have an aerodynamic braking system, and relied solely on a mechanical braking system that is more difficult to maintain and less reliable than the aerodynamic brakes used on HAWTs.
HAWTS use pitchable blades, which stop the turbine within one or two rotations without damage to the turbine and are based on multiple redundant, fail-safe designs. Barone said new VAWT designs will need robust aerodynamic brakes that are reliable and cost-effective, with a secondary mechanical brake much like on modern-day HAWTs. Unlike HAWT brakes, new VAWT brakes won't have actively pitching blades, which have their own reliability and maintenance issues.
VAWT technology: A long history at Sandia
In the 1970s and 1980s, when wind energy research was in its infancy, VAWTs were actively developed as windpower generators. Although strange looking, they had a lot going for them: They were simpler than their horizontal-axis cousins so they tended to be more reliable. For a while, VAWTs held their own against HAWTs. But then wind turbines scaled up.
"HAWTs emerged as the predominant technology for land-based wind over the past 15 years primarily due to advantages in rotor costs at the 1 to 5 megawatt scale," Paquette said.
In the 1980s, research focused more heavily on HAWT turbines, and many VAWT manufacturers left the business, consigning VAWTs to an "also ran" in the wind energy museum.
But the winds of change have blown VAWTs' way once more.
Sandia is mining the richness of its wind energy history. Wind researchers who were among the original wind energy engineers are going through decades of Sandia research and compiling the lessons learned, as well as identifying some of the key unknowns described at the end of VAWT research at Sandia in the 1990s.
The first phase of the program will take place over two years and will involve creating several concept designs, running those designs through modern modeling software and narrowing those design options down to a single, most-workable design. During this phase, Paquette, Barone and their colleagues will look at all types of aeroelastic rotor designs, including HVAWTs and V-shaped VAWTs. But the early favorite rotor type is the Darrieus design.
In phase two researchers will build the chosen design over three years, eventually testing it against the extreme conditions that a turbine must endure in an offshore environment.
In addition to rotor designs, the project will consider different foundation designs: Early candidates are barge designs, tension-leg platforms and spar buoys.
The project partners will work on many elements.
Another partner, the University of Maine, will develop floating VAWT platform dynamics code and subscale prototype wind/wave basin testing. Iowa State University will develop manufacturing techniques for offshore VAWT blades and subscale wind tunnel testing. TPI Composites will design a proof-of-concept subscale blade and develop a commercialization plan. TU-Delft will work on aeroelastic design and optimization tool development and modeling. Texas A&M University will work on aeroelastic design tool development.
"Ultimately it's all about the cost of energy. All these decisions need to lead to a design that's efficient and economically viable," said Paquette.
Sandia National Laboratories is a multi-program laboratory operated by Sandia Corporation, a wholly owned subsidiary of Lockheed Martin company, for the U.S. Department of Energy's National Nuclear Security Administration. With main facilities in Albuquerque, N.M., and Livermore, Calif., Sandia has major R&D responsibilities in national security, energy and environmental technologies and economic competitiveness. Read more...

Story Source: The above story is reprinted from Sandia Labs News Releases provided by DOE/Sandia National Laboratories.

Monday, August 6, 2012

Solar Stocks Rise High!

Renewable energy stocks fly high after positive, industry information is released!

Digitimes, Taiwan's Photonics Industry & Technology Development Association stated that Germany first-quarter installs, the largest solar panel creation customer base, rose 283% to nearly 2.0 gigawatts. China having an additional 1 gigawatts of projects in process as well and U.S. first-quarter installations grew 85% to 50 megawatts. 

After watching a majority of Solar stocks fall drastically to what looked like no bottom, they have been on fire the past few weeks with big news on earnings and new projects. These may be the stocks to watch as it seems their profits are holding strong through a dangerous economy. Read more...

Some of the big movers today include First Solar (Nasdaq: FSLR), SunPower (Nasdaq: SPWR), Ascent Solar Technologies (Nasdaq: ASTI), Yingli Green Energy (NYSE: YGE), and Trina Solar (NYSE: TSL).

Renewable Globe, Live on Blogspot!


Renewable Globe, Renewable World, Renewable Energy, Solar, Wind, Geothermal, Hydroelectric

RenewableGlobe.com is a new website focused on providing continuous, up to date information on renewable energy around the world. The website that will provide this information is currently under construction. The website is linked with this blog as well as Facebook. As the website becomes developed and this blog begins providing relevant information we will be sure to keep you up to date on our status. We welcome both constructive criticism and compliments in any form. Thank you and please follow! Read more...