Thursday, August 14, 2008

PG&E Signs Agreements With OPTISOLAR And SUNPOWER To Provide 800 MW Utility Scale Photovotaic Solar Power Farms.

Photo Copyright 2008 David Lena
SAN FRANCISCO – Pacific Gas and Electric Company today announced it has entered into two utility-scale, photovoltaic (PV) solar power contracts for a total of 800 megawatts (MW) of renewable energy. This significant commitment to photovoltaic technology will deliver cumulatively 1.65 billion kilowatt-hours of renewable energy annually. This would be equivalent to the amount of energy needed to serve approximately 239,000 residential homes each year.
PG&E entered into an agreement with Topaz Solar Farms LLC, a subsidiary of OptiSolar Inc., for 550 MW of thin-film PV solar power. The utility also signed a contract with High Plains Ranch II, LLC, a subsidiary of SunPower Corporation (Nasdaq: SPWR), for 250 MW of high-efficiency PV solar power.
The new Solar Projects from these agreements would provide enough Solar Energy Equivalent to the energy needs of 239,000 Californian homes. It will also fulfill state mandated need of 20% renewable energy requirement for PG&E. “These landmark agreements signal the arrival of utility-scale PV solar power that may be cost-competitive with solar thermal and wind energy,” said Jack Keenan, chief operating officer and senior vice president for PG&E. “We will continue to explore such innovative technologies as we aggressively work to increase the amount of renewable energy we provide our customers.”
Over the past six years, PG&E has entered into contracts for more than 3,600 MW of renewable power, including solar contracts that total more than 2,500 MW. PG&E now has contractual commitments for more than 24 percent of its future power deliveries from renewables, including wind, biomass and geothermal.
Utility-scale PV solar projects feature photovoltaic solar modules, which convert sunlight directly into electricity and produce the greatest amounts of power during the afternoons, when electricity demand is high. Both projects are contingent upon the extension of the federal investment tax credit for renewable energy and processes to expedite transmission needs.

OptiSolar’s Topaz Solar Farm

The 550 MW Topaz Solar Farm project» would utilize relatively low-cost, thin-film PV panels designed and manufactured by OptiSolar in Hayward and Sacramento. Located in San Luis Obispo County, California, the project would deliver an average of 1,100,000 megawatt-hours annually of renewable electricity. The project is expected to begin power delivery in 2011 and be fully operational by 2013.

“We are very happy to be working with PG&E to help meet California’s requirements for clean, renewable energy and are committed to working closely with the local community as this project moves forward,” said Randy Goldstein, chief executive officer of OptiSolar. “Our solar farms are quiet and emission-free, with solar panels mounted near ground level to minimize visual impact. Implementing cost-competitive solar power on this scale establishes thin-film photovoltaic generation as an important contributor to global sustainability.”

SunPower’s California Valley Solar Ranch

SunPower’s planned 250 MW solar ranch, would be located in San Luis Obispo County’s California Valley and will deliver an average of 550,000 megawatt-hours of clean electricity annually. The project is expected to begin power delivery in 2010 and be fully operational in 2012. The ranch would employ SunPower’s proprietary crystalline PV solar cells, which generate up to 50 percent more power than conventional crystalline cells. The company would install its patented SunPower® Tracker solar tracking systems at the site, which tilt toward the sun as it moves across the sky, increasing energy capture by up to 30 percent over fixed systems, while reducing land-use requirements.

“Today, high-efficiency photovoltaic technology is a competitively-priced component of utility-scale peak power generation,” said Tom Werner, chief executive officer of SunPower. “Our experience constructing more than 350 megawatts of solar systems on three continents allows us to deliver utility-scale systems quickly and at a scale of hundreds of kilowatts to hundreds of megawatts. We design our solar systems to maximize energy harvest while adapting to the natural topography of the site and serving the needs of the community.”



The Oregon Department of Transportation Going Solar!

The Oregon Department of Transportation is an agency on the move – to renewable energy. It takes 45 million kilowatt-hours of electricity annually to run Oregon’s state transportation system, energy used for signals, illumination, buildings, ramp metering and more, at a cost last year of more than $4 million. Today this energy comes from mostly non-renewable sources, but change is coming. Most highways and free ways could easily utilized to generate solar energy as they are access to large amount of real estate that mostly receive Solar light through out the year. We reported earlier, Venezuela lighting up street lights with Solar energy.




On Feb. 21, 2008, the Oregon Transportation Commission directed ODOT’s Office of Innovative Partnerships to develop a procurement for up to 2 megawatts of solar energy on ODOT properties, including along the state highway right of way and the interstate system. Leading the way will be the Oregon Solar Highway demonstration project, a public-private partnership with Portland General Electric and US Bank, to build the first-in-the-nation solar array in a freeway interchange. Groundbreaking took place Aug. 7, 2008. Physical construction is expected to begin in mid-September.

The National Renewable Energy Laboratory Achieves 40.8 % Efficiency With An Inverted Metamorphic Triple-junction Solar Cell, A World Record.

Scientists at the U.S. Department of Energy's National Renewable Energy Laboratory (NREL) have set a world record in solar cell efficiency with a photovoltaic device that converts 40.8 percent of the light that hits it into electricity. This is the highest confirmed efficiency of any photovoltaic device to date.

The inverted metamorphic triple-junction solar cell was designed, fabricated and independently measured at NREL. The 40.8 percent efficiency was measured under concentrated light of 326 suns. One sun is about the amount of light that typically hits Earth on a sunny day. The new cell is a natural candidate for the space satellite market and for terrestrial concentrated photovoltaic arrays, which use lenses or mirrors to focus sunlight onto the solar cells.

The new solar cell differs significantly from the previous record holder – also based on a NREL design. Instead of using a germanium wafer as the bottom junction of the device, the new design uses compositions of gallium indium phosphide and gallium indium arsenide to split the solar spectrum into three equal parts that are absorbed by each of the cell's three junctions for higher potential efficiencies. This is accomplished by growing the solar cell on a gallium arsenide wafer, flipping it over, then removing the wafer. The resulting device is extremely thin and light and represents a new class of solar cells with advantages in performance, design, operation and cost.

NREL's Mark Wanlass invented the original inverted cell, which recently won a R&D 100 award. His design was modified by a team led by John Geisz that further optimized the junction energies by making the middle junction metamorphic as well as the bottom junction. Metamorphic junctions are lattice mismatched – their atoms don't line up. The material properties of the mismatched semiconductors allows for greater potential conversion of sunlight.

NREL is the U.S. Department of Energy's primary national laboratory for renewable energy and energy efficiency research and development. NREL is operated for DOE by Midwest Research Institute and Battelle.

For further information contact NREL Public Relations at (303) 275-4090.

National Renewable Energy Laboratory Achieves 40.8 % Efficiency With An Inverted Metamorphic Triple-junction Solar Cell, A World Record.

Tuesday, August 12, 2008

U.S. leads world in wind energy generation but expiring tax credit may slow down the growth.

U.S. now leads world in wind energy generation but delay in extending federal tax credit places 2009 project pipeline on hold, discourages manufacturing investment

U.S. wind farms now generate more electricity than any other nation in the world and are on track to expand by over 45% this year, but the expiration of the federal production tax credit (PTC) less than five months from now threatens this spectacular progress, the American Wind Energy Association (AWEA) said today in its second quarter market report.

“The U.S. is now the world’s largest wind energy producer, with wind development sparking job creation and economic opportunity in a troubled economy,” said AWEA Executive Director Randall Swisher. “But the current figures hide a dire reality: the pipeline of investment for 2009 has been on hold for months, with escalating risks and costs for the industry, because of the uncertainty about the production tax credit. At a time when unemployment is at a 4-year high and the economy needs every stimulus it can get, a rapid extension of the credit should be on any economic priority list for Congress.”

The U.S. is now the world leader in wind electricity generation. While Germany still has more generating capacity installed (about 23,000 megawatts), the U.S. is producing more electricity from wind because of its much stronger winds.

Total U.S. installed wind power capacity now stands at 19,549 megawatts (MW). The industry installed 1,194 MW in the second quarter, down from 1,532 MW during the first. This brings the year’s new capacity to 2,725 MW, more than was installed in any year except 2007. More is under construction for completion either by the end of this year or the beginning of next year, depending on when the PTC is extended. Uncertainty regarding the PTC is causing a rush to complete projects by the end of the year, with increased risks and costs for the industry and eventually for customers. Under the best-case scenario for the industry, Congress will move quickly in September to extend the credit and the pressure will be eased for immediate project completion while reopening the pipeline for 2009. Under that scenario, AWEA projects at least 7,500 MW of new capacity to be added in 2008.

AWEA also reports a strong increase in domestic investment in wind turbine and wind turbine component manufacturing facilities over the past year and a half. At least 41 facilities have been announced, opened, or expanded over that period of time. These facilities will create over 9,000 jobs when they are at full capacity. Uncertainty about the PTC threatens that level of investment as well.

“It’s clear that wind power is not only a major technology with which to fight climate change, but also one of the most promising and dynamic economic engines we have today,” said Swisher. “The nation needs an ambitious plan to promote the deployment of wind and other renewable energy technologies—and the urgent first step it must take is to rapidly extend the expiring renewable energy credits, which are the primary incentive that the nation provides for these technologies today.”

The report is available on the AWEA Web site at www.awea.org/publications/reports/2Q08.pdf

Thursday, August 07, 2008

The City of Hiawatha Goes Green With The Help From Alliant Energy and MidAmerican Energy.

CEDAR RAPIDS, Iowa – August 5, 2008 – The City of Hiawatha replaced its 58-year-old city hall with not only a newer, but a “greener” facility. The building went through an energy-efficient design process provided by the Commercial New Construction program offered through Alliant Energy and MidAmerican Energy Company. Representatives from both utilities will present rebate checks totaling $29,646 to city officials during a brief ceremony at the city hall on Wednesday, August 6 at 10:00 a.m.
“The City of Hiawatha has a responsibility to our residents and to our environment. With the construction of our new building, we were committed to making Hiawatha City Hall energy-efficient,” said Dave Van Dee, Hiawatha City Administrator. “During the design process, we met with Alliant Energy and MidAmerican Energy to learn more about making City Hall energy efficient and reducing our energy costs. The energy conservation strategies provide an annual energy cost savings that will be beneficial for years to come.”
By partnering with local utility representations and evaluating the building’s energy efficiency potential before construction began, the City is expected to save more than $15,000 each year on its energy bills. These operational savings result from the City lowering its expected energy usage by an estimated 179,616 kilowatt-hours of electricity and 4,314 therms of natural gas each year. These savings earn the City a total incentive of $29,646, with Alliant Energy awarding a $25,146 energy-efficiency rebate for the electric savings, and MidAmerican Energy providing a $4,500 incentive for the gas savings.

“We evaluated several potential energy conservation strategies the City of Hiawatha could consider in building City Hall,” said Sam Page- Strategic Account Manager, Alliant Energy. “Hiawatha city officials were willing to commit to energy-efficiency on the front end allowing us to achieve much greater fiscal and environmental results.”

Interstate Power and Light Company (IPL), an Alliant Energy Company, and MidAmerican Energy offer Commercial New Construction Programs to assist owners and design teams in evaluating potential energy conservation strategies for new and renovated building projects. From the start of the conceptual design phase, the customer, project design team, and utility personnel work together using building performance simulation modeling to identify and implement cost-effective energy efficiency approaches that improve the overall energy efficiency of a building. A minimum energy savings of 5 percent greater than the State of Iowa building code is required.

The Commercial New Construction program can be utilized for new commercial buildings and building renovation projects. It is available to Alliant Energy and MidAmerican Energy retail electric and/or gas customers located in their respective Iowa service territories. For more information on Alliant Energy’s Commercial New Construction program, visit www.alliantenergy.com/newconstruction or call 1-866-ALLIANT (1-866-255-4268). For more information on MidAmerican Energy’s Commercial New Construction program, visit www.midamericanenergy.com/cnc or call 1-800-292-6448.
News Source


Wednesday, August 06, 2008

Sanyo Commisions New Shiga Factory for HIT Solar Cell Modules Production.

Tokyo, August 5, 2008 ---- SANYO Electric Co., Ltd. (SANYO) announces that it has completed construction of the Shiga Plant at its Shiga facilities (Ohtsu City, Shiga Prefecture) which was constructed for the assembly of HIT solar cell modules as part of continuing plans to expand and develop its Solar business.
The Shiga Plant will have an initial production capacity of 40 MW, and SANYO will consider expanding the production capacity of the factory upon further review of market trends and demand.
SANYO currently produces HIT solar cells at two factories, a t the Nishikinohama Factory (Kaizuka City, Osaka) and Shimane SANYO Electric Co. (Unnan City, Shimane Prefecture). The modules, or panels, are then assembled at two domestic facilities (Nishikinohama Factory and the Tokyo Plant) and two overseas facilities (Hungary and Monterrey (Mexico) Factories). With the new operation at the Shiga Plant which will be one of the major bases for module production, SANYO will respond to domestic market demands, including increases in demand in the future.

HIT (Heterojunction with Intrinsic Thin-layer) hybrid solar cells are created by combining amorphous silicon and crystalline silicon and using an intrinsic semiconductor.

SANYO Commences Operation of the New Shiga Factory for Solar Module Production


Monday, August 04, 2008

Toxic Alberta (North American Oil Scraping Has Drastic Effect On Environment, WIld Life and Atmospheric CO2 Levels.)

I was watching a video series that was made a quite some time ago about Alberta's oil sands and the extraction of the oil contained within Boreal forests. then I read the news item today by WWF. It is one thing or the other for the Oil companies and the politicians. The only out come so far is planet suffers. I will have these information arranged in a proper manner soon.

Link to down load 52 Page report Unconventional Oil - Scraping the bottom of the barrel? at the end of this news item.

29 Jul 2008-Exploitation of North America’s shale and tar-sand oil reserves could increase atmospheric CO2 levels by up to 15%, a new report from WWF-UK and the major UK financial group Co-Operative Financial Services (CFS) has warned.

Extraction of the projected 1,115 billion barrels of recoverable oil from unconventional fuel sources such as Alberta’s oil sands and Colorado’s oil shale, which involve much more energy intensive procedures for extraction than traditional oil reserves, would significantly increase global risks of dangerous climate change, the report said.

Unconventional Oil: Scraping the bottom of the barrel reported that companies including Shell, ExxonMobil and BP have announced over $CAN 125 billion worth of development in Canada’s oil sands by 2015. Increasing oil prices are also increasing interest in unconventional oil sources has been given added impetus by rising oil prices.

“The extraordinary lengths some oil and gas companies go to in attempting to make the climate-hostile fuels somewhat less so should be re-directed to bringing forward low-carbon energy,” said Ian Jones, head of Responsible Investment at Co-Operative Investments, part of the CFS group.

“Most oil companies have hardly begun to factor in the externalities that are currently imposed on the environment.”

These externalities include mass deforestation, such as Alberta’s Boreal forests, which lie above 140,000 square kilometres of oil sands, and are now crisscrossed with seismic lines and open-cast mines.

This region, identified as a “life support system for the planet,” is home to 11% of global terrestrial carbon sinks, themselves necessary for mitigating the climate change.

Production of oil sands is also extremely water intensive, requiring three barrels of water to produce each barrel of oil. This is threatening the ecosystem of the Athabasca river by reducing flows to dangerous levels.

Canada’s indigenous communities are also concerned with water quality in former wetlands now featuring tailings ponds up to 50 square kilometres in size which can be seen from outer space. Only 5-10% of waste water is judged sufficiently non-toxic to be returned to waterways

Risks to investors

Scraping the bottom of the barrel outlines potential risks to investors from the high capital costs of sand and shale to oil projects, looming regulatory restrictions, the likelihood of litigation, environmental liabilities from tailing ponds and restoration requirements and reliance on unproven technologies such as carbon capture and storage. Investors could end up with stranded assets,

The authors of the report themselves call for tighter regulations such as the Emissions Standards in place in California that, by prohibiting sales of fuels with high lifecycle emissions, would effectively outlaw fuel extracted from tar sands and oil shale.

“Companies and investors claim to recognise the need to tackle climate change and support international efforts such as Kyoto. In oil sands we have an activity that is going against this imperative…it is time for investors to challenge this strategy” said James Leaton, WWF-UK’s senior oil and gas adviser.

“Shareholders should challenge those oil companies that fail to steward investment responsibly.” added Jones.
Unconventional Oil - Scraping the bottom of the barrel? PDF Report

Saturday, August 02, 2008

A Lamborghini Goes On A 6,500-mile Round Trip, Qatar - Britain - Qatar For A Oil Change. And You Ask Where The Morons Are?

The oil price madness does not stop oil rich sheikh, in my eyes a moron, sending his Lamborghini on a 6,500-mile round trip to Britain for a service from Qatar.
The £190,000 supercar was put on a scheduled flight from Qatar to Heathrow – then flown BACK after the oil check according to The Sun. Yes they have photos to prove it as well.

This moron (I do not like to put people down but this guy is way beyond down) may have spent around £20,000-23000 ($39000-45000) for his oil change but I doubt he would have ever thought about global warming or carbon footprints. An airport worker said: “This car doesn’t have a carbon footprint – more of a crater.”

Yes I have some choice words in my mouth to describe this person but this is a public website. So I refrain. I think Lamborghini at least could have advised the brainless that it could have been done in Qatar.

Here is the link to the Sun article.

Wednesday, July 30, 2008

Police Tackles Critical Mass!

A Few Times I have been inconvenienced by Critical Mass cyclists in San Francisco. I may have cursed them silently then but I did drive into them. I accepted what their core idea that we should get off our cars. This was about 10 years ago. But since then I have added a bicycle to my arsenal of traveling instruments. Yet it is not for me to join the critical mass. Lets say it is not my cup of tea.
But a Cop abusing a bicycle rider as you can see in the following video is not acceptable. Even if the cyclist said something to the police man, the police report is a lie as far as I can see from the video. The police man runs into the cyclist and not vise versa. I hope New York will solve this issue in a better manner.
Following is how YT describes and reports it.

"more news reports... finally recognizing what bicyclists have said all along!
we are randomly terrorized, assaulted, dragged through the court system by lies, liars, and liarinos"

Thursday, July 24, 2008

Clean Tech Open 2008 California Competition Finalists Selected.

Palo Alto, Calif., July 21, 2008 — The Clean Tech Open (CTO) tonight announced that its judges have selected 44 finalists in the 2008 California competition, from among more than 100 contestants. The Clean Tech Open is America's richest clean tech business plan contest, having awarded over $1.2 million in prizes in just two years.

Finalists compete in one of six categories, vying for the winning prize of "$100,000 Start-Up in a Box" prize package that includes all of the business essentials necessary to help take clean technology ideas from a concept to a business.

"Every year I am pleasantly surprised with the increased overall quality of the teams entering the competition relative to the previous year," said Rebeca Hwang, judging chair for Clean Tech Open. "Our judges are really looking forward to learning more about our entrants and had a tough time making their final decision, We are excited to see how finalists and non-finalists bring their ideas to market."

All 44 finalists may take part in a series of comprehensive entrepreneur summer workshops sponsored by the Cleantech Circle and the the U.S. Department of Energy, Office of Energy Efficiency and Renewable Energy, and additionally receive mentoring services from a group of volunteers including successful technology entrepreneurs and other business experts.

Following formal pitches by the finalists to the judging panels, CTO will select six winners and present them with their prizes at the grand final event on November 6, 2008.

"This is my third year as judge and our panel is very impressed at this year's entrants," said Chris Vargas, partner for Cleantech Circle LLC and judging panel chair for the Energy Efficiency category. "There is a strong focus on solving real needs, developing sound businesses and creating a meaningful impact on the environment. Selecting just 5 to 10 finalists in each category becomes more difficult each year."

Finalist profiles are available at www.CleanTechOpen.com. The finalists are:

Air, Water & Waste category — Prize Co-Sponsor Grundfos
  • Clean Coal Inc.: Removes contaminants from coal
  • Over the Moon Diapers: High performance reusable diapers and service network
  • Porifera: Carbon nanotube membrane for reverse osmosis desalination
  • PURE-T: Salt free water softener using nanobeads
  • Purite: Zero-energy chemical-free whole house water filtration
  • SequesCO: Microbial CO2 capture and conversion to biofuel
  • Waste Water Works (WWW): Microbial wastewater treatment also generates electricity

Energy Efficiency category — Prize Sponsors PG&E, SCE and SDG&E:
  • Atomic Precision Systems Inc.: New semiconductor process for ultra-cheap LED lighting
  • Enovative Group: Smart pump for hot water circulation
  • NexChem: Energy-saving process improvement for zinc galvanizing
  • Transoptic: Solar energy assistance for conventional water heaters
  • Viridis Earth: Domestic HVAC retrofit to improve efficiency
  • WicKool: Energy efficient water recovery for existing rooftop air conditioning

Green Building category:
  • BottleStone: Ceramic stone countertops include 80% recycled glass
  • en-vis-age: Green, modular and customizable buildings
  • Green Design Systems: Straw wall building panels
  • GreenHomeAnswers.com: Home improvement website for green products and services
  • GroundSource: Residential geothermal system with installation services
  • ISTN: Eco-friendly building insulation
  • Parco Homes: Manufactured green (zero net energy) home kits
  • Solar Red: Low cost rooftop PV installation system and components
  • Team Wawa: Water-conserving shower system

Renewables category — Prize Sponsors Google, PG&E, and SCE:
  • Covalent Solar: Organic thin film solar concentrators
  • Focal Point Energy: Solar thermal water heater for industrial processes
  • IEM Applications: Landfill methane accelerated recovery
  • Renewable Fuel Technologies: Agricultural waste biomass converted to Green Coal
  • Solar Ice: Solar powered ice maker
  • Solindis: Optical solar concentrator for thin film PV

Smart Power category — Prize Sponsors AMD and Siemens TTB:
  • 1ARC Energy: Higher capacity lithium-ion batteries
  • Cooler: Carbon calculator to allow B2B targeted advertising in LOHAS
  • Energy Empowered: Home display and control to reduce standby power usage
  • Enverity Corporation: Greenhouse gas tracking and compliance
  • Power Assure: Data center energy management software service
  • Renewable Voltage: Treats organic waste to provide hydrogen and energy storage
  • Tangerine Network Devices: Home energy display and control

Transportation category — Prize Sponsor Lexus:
  • AAA Fleets: Turnkey electric vehicles and solar charging systems for fleets
  • E-Chargers: Plug-in hybrid charging station
  • ElectraDrive: Gas to electric drivetrain auto conversion
  • Electric Drive Research: Plug-in/gas hybrid 2 person, 3 wheel sports car
  • ElectronVault, Inc.: More efficient traction battery for hybrids
  • Enhanced Vehicle Acoustics: Flexible engine sound generator for quiet cars
  • FuelMotion: Series hybrid conversions for the developing world
  • Goose Networks: Hosted dynamic scheduler for carpools/vanpools
  • Philo Fuel: GPS-based audiovisual cues to help drivers optimize fuel efficiency

Past CTO finalists have gone on to raise more than $70 million of VC funding in two years, not including the revenue gained from substantial customer contracts. Plus, of the 95 alumni companies, more than 84 percent are still viable businesses. For more information on the current finalists and alumni companies, visit www.CleanTechOpen.com

Wednesday, July 23, 2008

Architectural Wind System Installed At Boston’s Logan International Airport

MONROVIA, Calif., July 22, 2008 – AeroVironment, Inc. (AV) (NASDAQ: AVAV), a  leader in unmanned aircraft systems and efficient electric energy systems, has announced that its Architectural Wind system has been installed at Boston’s Logan International Airport Office Center as part of a project commissioned by the Massachusetts Port Authority (Massport).  The installation comprises 20 five-bladed wind turbines and ties in with a comprehensive energy management plan that Massport has established for all its facilities. 

“At Massport, we are continually striving to improve our facilities – making them more energy efficient as well as environmentally and user friendly,” said Project Manager Terry Civic.  “The installation of the Architectural Wind turbines at Logan Airport is one of the many initiatives underway designed to exceed national standards for energy efficiency, and we look forward to significant energy-saving results.”  Logan International is home to the nation’s first airport terminal awarded Gold Level certification for Leadership in Energy and Environmental Design (LEED®) by the U.S. Green Building Council.

AV’s Architectural Wind is a small, modular building-integrated wind turbine system. It is designed for quick and easy installation onto the parapet of a concrete tilt-up, pre-cast, or other low-profile building.  Installation results in little or no structural impact and tall support towers are not required. For the Logan Airport installation, AV worked closely with Massport to incorporate the turbines on their building without any occupancy disruptions.  The patented design and positioning of the system on a building takes advantage of the natural acceleration in wind speed resulting from the building’s aerodynamic properties.  This increased wind speed can increase the turbines' electrical power generation by more than 50% compared to the power generation that would result from systems situated outside of the acceleration zone.

Architectural Wind systems have been installed on buildings throughout the country – including the new Kettle Foods potato chip factory in Beloit, Wis.; Laughlin Air Force Base near Del Rio, Texas; and the St. Louis County Government Service Center – providing not only reliable, non-polluting, renewable energy, but also a visual demonstration of customers’ commitment to clean energy.  AV’s sleek-looking wind turbine recently won the Red Dot International Design award (for design concept in the “green” category) and the Annual Design Review award (in the equipment category) from I.D., The International Design Magazine. 

More information about the Architectural Wind system is available via email at wind@avinc.com or on the Web at www.avinc.com/wind

AV is a pioneer in advanced energy system technologies.  Since 1977, it has maintained a continuous presence in wind power technology, conducting more than 250 sponsored projects and investing in and developing wind farms.  AV’s new building-integrated Architectural Wind wind-turbine system provides an attractive clean-energy-generating technology for use in both urban and suburban environments and is especially suitable for airport facilities.

Tags: , , ,

Monday, July 21, 2008

Lease Solar Power In San Francisco From SolarCity, For Less Than Your Cable Bill


SAN FRANCISCO, July 21, 2008 -- SolarCity, California's No. 1 residential solar power company, today announced one of the nation's most affordable solar power financing options for San Francisco residents. SolarCity's SolarLease options incorporate incentives from San Francisco's groundbreaking GoSolarSF program, and can allow many San Francisco homeowners to use clean, renewable solar power for less than they currently pay for electricity.
For example, SolarCity can provide 2.4 kilowatt systems for monthly lease payments starting at $25 per month for eligible San Francisco installations on approved credit. A 2.4 kilowatt system can typically reduce a $100 monthly electricity bill to $40 in San Francisco. In this example, the $65 cost of the combined lease payment and new electricity bill create a net monthly savings of $35. The lease structure - with fixed lease payments that increase 3.5 percent annually - is designed to allow customers to save money immediately, and continue to save over the life of the lease as electricity rates increase.
SolarCity custom designs each solar system to the homeowner's needs, based on roof space, electricity usage and other factors, so lease terms will vary for each customer. Interested San Francisco residents can estimate their potential savings by using SolarCity's solar calculator, available online at http://solarlease.solarcity.com.
"This program gives San Francisco residents a way to lower their electricity bills at a time when energy costs are skyrocketing. There's no longer any need to wait for affordable clean power options," said Lyndon Rive, SolarCity's CEO. "Congratulations to the city of San Francisco for creating the most affordable solar program in the country."
The $3 million GoSolarSF program is expected to help 300-500 San Francisco homeowners to migrate to clean solar power this year. Eligibility requirements and other details of the GoSolarSF program are available online at http://sfwater.org/detail.cfm/MC_ID/12/MSC_ID/139/MTO_ID/361/C_ID/3910. The most affordable SolarLease pricing options will only be available while the incentive lasts, so interested homeowners should contact SolarCity as soon as possible at 1-888-SOL-CITY or www.solarcity.com.

Adding lime (calcium hydroxide) to seawater to reverse CO2 in the atmosphere.

A dash of lime -- a new twist that may cut CO2 levels back to pre-industrial levels

Scientists say they have found a workable way of reducing CO2 levels in the atmosphere by adding lime to seawater. And they think it has the potential to dramatically reverse CO2 accumulation in the atmosphere, reports Cath O'Driscoll in SCI's Chemistry & Industry magazine published today.

Shell is so impressed with the new approach that it is funding an investigation into its economic feasibility. 'We think it's a promising idea,' says Shell's Gilles Bertherin, a coordinator on the project. 'There are potentially huge environmental benefits from addressing climate change – and adding calcium hydroxide to seawater will also mitigate the effects of ocean acidification, so it should have a positive impact on the marine environment.'

Adding lime to seawater increases alkalinity, boosting seawater's ability to absorb CO2 from air and reducing the tendency to release it back again.

However, the idea, which has been bandied about for years, was thought unworkable because of the expense of obtaining lime from limestone and the amount of CO2 released in the process.

Tim Kruger, a management consultant at London firm Corven is the brains behind the plan to resurrect the lime process. He argues that it could be made workable by locating it in regions that have a combination of low-cost 'stranded' energy considered too remote to be economically viable to exploit – like flared natural gas or solar energy in deserts – and that are rich in limestone, making it feasible for calcination to take place on site.

Kruger says: 'There are many such places – for example, Australia's Nullarbor Plain would be a prime location for this process, as it has 10 000km3 of limestone and soaks up roughly 20MJ/m2 of solar irradiation every day.'

The process of making lime generates CO2, but adding the lime to seawater absorbs almost twice as much CO2. The overall process is therefore 'carbon negative'.

'This process has the potential to reverse the accumulation of CO2 in the atmosphere. It would be possible to reduce CO2 to pre-industrial levels,' Kruger says.

And Professor Klaus Lackner, a researcher in the field from Columbia University, says: 'The theoretical CO2 balance is roughly right…it is certainly worth thinking through carefully.'

The oceans are already the world's largest carbon sink, absorbing 2bn tonnes of carbon every year. Increasing absorption ability by just a few percent could dramatically increase CO2 uptake from the atmosphere.

This project is being developed in an open source manner. To find out more, please go to www.cquestrate.com, a new website, launched today.

For a full copy of the article, contact: Meral Nugent, Press and Public Relations Manager, T: +44 (0)20 7598 1533, F: +44 (0) 20 7598 1545, Mob: 07931 315077 E: meral.nugent@soci.org

Contact: Meral Nugent
meral.nugent@soci.org
020-759-81533
Society of Chemical Industry

Friday, July 18, 2008

Researchers Are Closer To Low Cost, Bright Solid State Lighting!

Advance brings low-cost, bright LED lighting closer to reality

 WEST LAFAYETTE, Ind. - Researchers at Purdue University have overcome a major obstacle in reducing the cost of "solid state lighting," a technology that could cut electricity consumption by 10 percent if widely adopted.
The technology, called light-emitting diodes, or LEDs, is about four times more efficient than conventional incandescent lights and more environmentally friendly than compact fluorescent bulbs. The LEDs also are expected to be far longer lasting than conventional lighting, lasting perhaps as long as 15 years before burning out.
"The LED technology has the potential of replacing all incandescent and compact fluorescent bulbs, which would have dramatic energy and environmental ramifications," said Timothy D. Sands, the Basil S. Turner Professor of Materials Engineering and Electrical and Computer Engineering.
The LED lights are about as efficient as compact fluorescent lights, which contain harmful mercury.
But LED lights now on the market are prohibitively expensive, in part because they are created on a substrate, or first layer, of sapphire. The Purdue researchers have solved this problem by developing a technique to create LEDs on low-cost, metal-coated silicon wafers, said Mark H. Oliver, a graduate student in materials engineering who is working with Sands.
Findings are detailed in a research paper appearing this month in the journal Applied Physics Letters, published by the American Institute of Physics.
LEDs designed to emit white light are central to solid-state lighting, semiconducting devices made of layers of materials that emit light when electricity is applied. Conventional lighting generates light with hot metal filaments or glowing gasses inside glass tubes.
The LEDs have historically been limited primarily to applications such as indicator lamps in electronics and toys, but recent advances have made them as bright as incandescent bulbs.
The light-emitting ingredient in LEDs is a material called gallium nitride, which is used in the sapphire-based blue and green LEDs, including those in traffic signals. The material also is used in lasers in high-definition DVD players.
The sapphire-based technology, however, is currently too expensive for widespread domestic-lighting use, costing at least 20 times more than conventional incandescent and compact fluorescent light bulbs.
One reason for the high cost is that the sapphire-based LEDs require a separate mirrorlike collector to reflect light that ordinarily would be lost.
In the new silicon-based LED research, the Purdue engineers "metallized" the silicon substrate with a built-in reflective layer of zirconium nitride.
"When the LED emits light, some of it goes down and some goes up, and we want the light that goes down to bounce back up so we don't lose it," said Sands, the Mary Jo and Robert L. Kirk Director of the Birck Nanotechnology Center in Purdue's Discovery Park.
Ordinarily, zirconium nitride is unstable in the presence of silicon, meaning it undergoes a chemical reaction that changes its properties.
The Purdue researchers solved this problem by placing an insulating layer of aluminum nitride between the silicon substrate and the zirconium nitride.
"One of the main achievements in this work was placing a barrier on the silicon substrate to keep the zirconium nitride from reacting," Sands said.
Until the advance, engineers had been unable to produce an efficient LED created directly on a silicon substrate with a metallic reflective layer.
The Purdue team used a technique common in the electronics industry called reactive sputter deposition. Using the method, the researchers bombarded the metals zirconium and aluminum with positively charged ions of argon gas in a vacuum chamber. The argon ions caused metal atoms to be ejected, and a reaction with nitrogen in the chamber resulted in the deposition of aluminum nitride and zirconium nitride onto the silicon surface. The gallium nitride was then deposited by another common technique known as organometallic vapor phase epitaxy, performed in a chamber, called a reactor, at temperatures of about 1,000 degrees Celsius, or 1,800 degrees Fahrenheit.
As the zirconium nitride, aluminum nitride and gallium nitride are deposited on the silicon, they arrange themselves in a crystalline structure matching that of silicon.
"We call this epitaxial growth, or the ordered arrangement of atoms on top of the substrate," Sands said. "The atoms travel to the substrate, and they move around on the silicon until they find the right spot."
This crystalline formation is critical to enabling the LEDs to perform properly.
"It all starts with silicon, which is a single crystal, and you end up with gallium nitride that's oriented with respect to the silicon through these intermediate layers of zirconium nitride and aluminum nitride," Sands said. "If you just deposited gallium nitride on a glass slide, for example, you wouldn't get the ordered crystalline structure and the LED would not operate efficiently."
Using silicon will enable industry to "scale up" the process, or manufacture many devices on large wafers of silicon, which is not possible using sapphire. Producing many devices on a single wafer reduces the cost, Sands said.
Another advantage of silicon is that it dissipates heat better than sapphire, reducing damage caused by heating, which is likely to improve reliability and increase the lifetime of LED lighting, Oliver said.
The widespread adoption of solid-state lighting could have a dramatic impact on energy consumption and carbon emissions associated with electricity generation since about one-third of all electrical power consumed in the United States is from lighting.
"If you replaced existing lighting with solid-state lighting, following some reasonable estimates for the penetration of that technology based on economics and other factors, it could reduce the amount of energy we consume for lighting by about one-third," Sands said. "That represents a 10 percent reduction of electricity consumption and a comparable reduction of related carbon emissions."
Incandescent bulbs are about 10 percent efficient, meaning they convert 10 percent of electricity into light and 90 percent into heat.
"Its actually a better heater than a light emitter," Sands said.
By comparison, efficiencies ranging from 47 percent to 64 percent have been seen in some white LEDs, but the LED lights now on the market cost about $100.
"When the cost of a white LED lamp comes down to about $5, LEDs will be in widespread use for general illumination," Sands said. "LEDs are still improving in efficiency, so they will surpass fluorescents. Everything looks favorable for LEDs, except for that initial cost, a problem that is likely to be solved soon."
He expects affordable LED lights to be on the market within two years.
Two remaining hurdles are to learn how to reduce defects in the devices and prevent the gallium nitride layer from cracking as the silicon wafer cools down after manufacturing.
"The silicon wafer expands and contracts less than the gallium nitride," Sands said. "When you cool it down, the silicon does not contract as fast as the gallium nitride, and the gallium nitride tends to crack."
Sands said he expects both challenges to be met by industry.
"These are engineering issues, not major show stoppers," he said. "The major obstacle was coming up with a substrate based on silicon that also has a reflective surface underneath the epitaxial gallium nitride layer, and we have now solved this problem."
The research, based at the Birck Nanotechnology Center and funded by the U.S. Department of Energy through its solid-state lighting program, is part of a larger project at Purdue aimed at perfecting white LEDs for lighting.
The Applied Physics Letters paper was written by researchers in the School of Materials Engineering and the School of Electrical and Computer Engineering: Oliver; fellow graduate students Jeremy L. Schroeder, David A. Ewoldt, Isaac H. Wildeson, Robert Colby, Patrick R. Cantwell and Vijay Rawat; Eric A. Stach, an associate professor of materials engineering; and Sands.
Writer: Emil Venere, (765) 494-4709, venere@purdue.edu
Sources: Timothy Sands, (765) 496-6105, tsands@purdue.edu

Purdue News Service: (765) 494-2096; purduenews@purdue.edu
Note to Journalists: An electronic copy of the research paper is available from Emil Venere, Purdue News Service, at (765) 494-4709, venere@purdue.edu

Wednesday, July 16, 2008

MIT's new 'window' on Solar Energy With "Solar Concentrators", An Edge On Solar

Organic solar concentrators collect and focus different colors of sunlight. Solar cells can be attached to the edges of the plates. By collecting light over their full surface and concentrating it at their edges, these devices reduce the required area of solar cells and consequently, the cost of solar power. Stacking multiple concentrators allows the optimization of solar cells at each wavelength, increasing the overall power output. Photo / Donna Coveney
CAMBRDGE, Mass. -- Imagine windows that not only provide a clear view and illuminate rooms, but also use sunlight to efficiently help power the building they are part of. MIT engineers report a new approach to harnessing the sun's energy that could allow just that.

The work, to be reported in the July 11 issue of Science, involves the creation of a novel "solar concentrator." "Light is collected over a large area [like a window] and gathered, or concentrated, at the edges," explains Marc A. Baldo, leader of the work and the Esther and Harold E. Edgerton Career Development Associate Professor of Electrical Engineering.

As a result, rather than covering a roof with expensive solar cells (the semiconductor devices that transform sunlight into electricity), the cells only need to be around the edges of a flat glass panel. In addition, the focused light increases the electrical power obtained from each solar cell "by a factor of over 40," Baldo says.

Because the system is simple to manufacture, the team believes that it could be implemented within three years—even added onto existing solar-panel systems to increase their efficiency by 50 percent for minimal additional cost. That, in turn, would substantially reduce the cost of solar electricity.

In addition to Baldo, the researchers involved are Michael Currie, Jon Mapel, and Timothy Heidel, all graduate students in the Department of Electrical Engineering and Computer Science, and Shalom Goffri, a postdoctoral associate in MIT's Research Laboratory of Electronics.

"Professor Baldo's project utilizes innovative design to achieve superior solar conversion without optical tracking," says Dr. Aravinda Kini, program manager in the Office of Basic Energy Sciences in the U.S. Department of Energy's Office of Science, a sponsor of the work. "This accomplishment demonstrates the critical importance of innovative basic research in bringing about revolutionary advances in solar energy utilization in a cost-effective manner."

Solar concentrators in use today "track the sun to generate high optical intensities, often by using large mobile mirrors that are expensive to deploy and maintain," Baldo and colleagues write in Science. Further, "solar cells at the focal point of the mirrors must be cooled, and the entire assembly wastes space around the perimeter to avoid shadowing neighboring concentrators."

The MIT solar concentrator involves a mixture of two or more dyes that is essentially painted onto a pane of glass or plastic. The dyes work together to absorb light across a range of wavelengths, which is then re-emitted at a different wavelength and transported across the pane to waiting solar cells at the edges.

In the 1970s, similar solar concentrators were developed by impregnating dyes in plastic. But the idea was abandoned because, among other things, not enough of the collected light could reach the edges of the concentrator. Much of it was lost en route.

The MIT engineers, experts in optical techniques developed for lasers and organic light-emitting diodes, realized that perhaps those same advances could be applied to solar concentrators. The result? A mixture of dyes in specific ratios, applied only to the surface of the glass, that allows some level of control over light absorption and emission. "We made it so the light can travel a much longer distance," Mapel says. "We were able to substantially reduce light transport losses, resulting in a tenfold increase in the amount of power converted by the solar cells."

This work was also supported by the National Science Foundation. Baldo is also affiliated with MIT's Research Laboratory of Electronics, Microsystems Technology Laboratories, and Institute for Soldier Nanotechnologies.

Mapel, Currie and Goffri are starting a company, Covalent Solar, to develop and commercialize the new technology. Earlier this year Covalent Solar won two prizes in the MIT $100K Entrepreneurship Competition. The company placed first in the Energy category ($20,000) and won the Audience Judging Award ($10,000), voted on by all who attended the awards.

Written by Elizabeth Thomson, MIT News Office

Photos available upon request

Contact: Teresa Herbert
therbert@mit.edu
617-258-5403
Massachusetts Institute of Technology

Tuesday, July 15, 2008

Canadian Solar And Conergy USA Signs 9MW e-Module Sales Agreement

Canadian Solar Signs 9MW Sales Agreement with Conergy USA

JIANGSU and JIANGXI, China, July 15 Canadian Solar Inc. today announced a 9MW sales agreement for its e-Modules with Conergy USA, a global leader in renewable energy solutions. The contract runs for 12 months until June 2009 and delivery will start this month.

Kim McLawhorn, President of Conergy Americas commented, "We are pleased to offer CSI's e-Modules for our off-grid and grid-connected installations of photovoltaic systems. As a leading global PV supplier, we are confident in the long-term growth of the US solar market and look to continue our strategic partnership with CSI as we help consumers achieve clean and independent energy solutions.''

Dr. Shawn Qu, CEO of CSI, said, "We are very pleased to announce this relationship with Conergy. This contract serves as a testament to the quality of our e-Module technology, and the strong demand we are seeing in the market place continuing into 2009.''

Introduced by CSI, e-Module is a low-cost, medium-power solar panel product built with 100% upgraded metallurgical silicon (UMG).

Additionally, CSI will have an exhibit open to the public at Intersolar North America in San Francisco, July 15-17, 2008 at Booth No. 9100, West Hall Level 3. This will be the U.S.'s premier international exhibition for photovoltaics, solar thermal technology and solar architecture. Coupled with SEMICON West, Intersolar North America will also attract a broad base of attendees in the complimentary markets of semiconductor and nano-electronics manufacturing and development.

Friday, July 11, 2008

Do You Recycle Your Computer? Discovery Says Don't

According to this article on Discovery Channel, recycling computers may not be a good idea. The recyclers, looking to make an easy buck are shipping them to other countries where laws are lax and labor is cheaper. So what do you do? follow the link after the jump for complete article.

"OK, you've bought your new laptop. Now, what do with that old clunker of a desktop? The green thing to do would be to recycle it, right? We're pretty conditioned to consider that option since we do it for plastic bottles and aluminum cans. So why not recycle the plastics and metals in old computers? Well, it turns out that our usual assumptions about recycling aren't always right when it comes to electronics.

For starters, many computers and other electronics are shipped to developing countries, including Indonesia, China and India for recycling. Lower wages, higher demand for used products and lower environmental protections mean that turning around old computers and their materials for sale run a profit there. (In the United States and Europe, it's usually a net cost.)"

Computer recycle report on Discovery

Arizona State University Boost Arizona’s Renewable Energy Industry And Protect The Environment With Solar Power Laboratory.

Tempe, AZ – Arizona State University is strengthening its commitment to boost Arizona’s economic development prospects in the renewable energy industry by establishing the Solar Power Laboratory to advance solar energy research, education and technology.

Prominent scientists and engineers are being hired to lead the endeavor to improve the efficiency of solar electric power systems while making them more economically feasible.

“The Solar Power Laboratory will further build up the university’s already formidable solar energy research and develop collaborations with the energy industry to accelerate expansion of the state’s economy,” said ASU President Michael Crow.

The effort is a major part of ASU’s response to the Arizona Board of Regents’ Solar Energy Initiative, aimed at encouraging research and development to meet future needs for renewable energy sources, Crow said.

In addition to spurring economic opportunity, advances in solar power systems will help Arizona protect its environment by enabling more widespread use of this clean-energy source, Crow said.

The laboratory will be a collaboration partnering the university’s Global Institute of Sustainability and Ira A. Fulton School of Engineering.

Christiana Honsberg, Stuart Bowden and George Maracas have been hired for the venture. Honsberg will be chief scientist, Bowden will be industrial liaison, and Maracas will be chief operating officer.

Honsberg and Bowden are coming to ASU from the University of Delaware, where they worked in the most extensive university solar research program in the United States.

Maracas has made his mark with more than 25 years of accomplishments in engineering research, research management and technology commercialization.

“Our goal is for ASU to have the pre-eminent academic solar energy research, development and training program in the United States, and one of the top such programs in the world” said Jonathan Fink, director of the Global Institute of Sustainability. “The establishment of the Solar Power Laboratory and the hiring of Honsberg, Bowden and Maracas combined with our ongoing research efforts help us meet this objective.”

The lab’s goal in large part will be to support a significant facet of the economic development objectives of Arizona and the Southwest, Fink said, noting that expansion of the solar energy industry has been identified as an economic priority by Arizona Gov. Janet Napolitano, the state Department of Commerce, the Greater Phoenix Economic Council and Science Foundation Arizona.

“ASU and the state of Arizona have a number of exciting economic development and research opportunities associated with renewable energy,” he said. “These three new faculty members will play key roles in making sure that these efforts are successful.”

Honsberg is considered a pioneer in photovoltaics – the solar cells that convert sunlight into energy. She helped establish the Center for Photovoltaic Engineering at the University of Delaware, which developed the first undergraduate degree in photovoltaic engineering.

Delaware’s photovoltaics center also won the largest solar energy research grant in the country – $50 million from the U.S. Department of Defense.

Bowden has been working at the University of Delaware’s Institute of Energy Conversion. He is credited with helping make major strides in improving the efficiency of silicon and crystalline silicon solar cells and the cell manufacturing process.

Honsberg and Bowden previously were at the University of New South Wales, Australia, working in one of the strongest academic solar energy programs in the world.

Maracas is returning to ASU after leaving 14 years ago to work with Motorola Inc., where he founded the company’s Molecular Technology Lab and Motorola Life Sciences, and held director positions in Motorola’s advanced technologies and nanotechnology research operations. He had 30 patents issued during his time with the company.

Maracas also has been president of two companies providing technical and management consulting services to industry and government in nanotechnology, medical diagnostic devices and biotechnology.

Honsberg will be a professor and Bowden an associate research professor in the Department of Electrical Engineering. Maracas will be a professor in electrical engineering and ASU’s School of Sustainability. He had previously been an electrical engineering faculty member at ASU for about 10 years before leaving for private industry in 1994.

Through their work in the new laboratory, “We hope to unify the various solar energy-related research efforts throughout the university and to develop industry collaborations,” explained Stephen Goodnick, ASU’s associate vice president of Research and Economic Affairs.

Solar power groups such as the university’s Advanced Photovoltaics Center and Photovoltaic Testing Laboratory will be affiliated with the new lab under the Global Institute of Sustainability.

The lab “will bring together other ASU researchers, from materials engineering, physics, chemistry, electrical engineering and architecture” to collaborate on projects, Goodnick said.

“For four decades, ASU has been a leader in research related to virtually all aspects of solar energy”, Fink said, including creation of new materials and devices for generating electricity from sunlight, improved methods of photovoltaics testing, design of advanced power systems, and laying the groundwork for sound energy policies

“To build on these accomplishments and, more importantly, increase the chances for Arizona to attract more international solar companies, we decided ASU needed to bring in new faculty members who have outstanding reputations in the global solar industry,” Fink said.

Maracas brings extensive experience in working with private industry, and the accomplishments of Honsberg and Bowden “are well-known to the solar industry on both sides of the Pacific,” he said.

“In a technical community replete with creative engineers and scientists, Christiana Honsberg stands out as a talent of unique vision,” said Craig Cornelius, a former director of the U.S Department of Energy solar energy program and leader of its Solar America Initiative.

For years, the energy department “has turned to Honsberg to lead its most ambitious investigations of high-efficiency photovoltaics,” Cornelius said. “She will be a great addition to ASU’s growing franchise in solar research.”

Zhengrong Shi, who worked with Honsberg and Bowden at the University of New South Wales, is the founder and CEO of Suntech, the largest solar energy company in China and one of three largest in the world.

Shi ranks Honsberg and Bowden “clearly among world leaders in their respective fields in photovoltaics. Their strong links to [the University of New South Wales] and Suntech will provide great opportunities for research and development collaboration with ASU.”


# # #

SOURCES:
Jonathan Fink, jonathan.fink@asu.edu
Director
Global Institute of Sustainability
(480) 965-4797

Stephen Goodnick, stephen.goodnick@asu.edu
Associate Vice President
Research and Economic Affairs
(480) 965-1225

MEDIA CONTACTS:
Joe Kullman, joe.kullman@asu.edu
Ira A. Fulton School of Engineering
(480) 965-8122 direct line
(480) 773-1364 mobile
www.fulton.asu.edu/fulton/

Karen Leland, karen.leland@asu.edu
Global Institute of Sustainability
(480)965-0013
http://gios.asu.edu

Thursday, July 10, 2008

33% Of Reef Building Corals Face Extinction And Joind he IUCN Red List of Threatened Species

Mushroom corals (Fungiidae) belonging to various species affected by bleaching during elevated seawater temperatures in the Thousand Islands, off Jakarta, Indonesia
Keywords: Coral Assessment
Creator: Bert W. Hoeksema / Naturalis
Copyright: Bert W. Hoeksema / Naturalis
Country: Indonesia
Climate change and human-induced destruction cited as causes

Arlington, VA (July 10, 2008) – A third of reef-building corals around the world are threatened with extinction, according to the first-ever comprehensive global assessment to determine their conservation status. The study findings were published today by Science Express.

Leading coral experts joined forces with the Global Marine Species Assessment (GMSA) – a joint initiative of the International Union for Conservation of Nature (IUCN) and Conservation International (CI) – to apply the IUCN Red List Categories and Criteria to this important group of marine species.

"The results of this study are very disconcerting," stated Kent Carpenter, lead author of the Science article, GMSA Director, IUCN Species Programme. "When corals die off, so do the other plants and animals that depend on coral reefs for food and shelter, and this can lead to the collapse of entire ecosystems."

Built over millions of years, coral reefs are home to more than 25 percent of marine species, making them the most biologically diverse of marine ecosystems. Corals produce reefs in shallow tropical and sub-tropical seas and have been shown to be highly sensitive to changes in their environment.

Researchers identified the main threats to corals as climate change and localized stresses resulting from destructive fishing, declining water quality from pollution, and the degradation of coastal habitats. Climate change causes rising water temperatures and more intense solar radiation, which lead to coral bleaching and disease often resulting in mass coral mortality.

Shallow water corals have a symbiotic relationship with algae called zooxanthellae, which live in their soft tissues and provide the coral with essential nutrients and energy from photosynthesis and are the reason why corals have such beautiful colors. Coral bleaching is the result of a stress response, such as increased water temperatures, whereby the algae are expelled from the tissues, hence the term "bleaching." Corals that have been bleached are weaker and more prone to attack from disease. Scientists believe that increased coral disease also is linked to higher sea temperatures and an increase in run-off pollution and sediments from the land.

Researchers predict that ocean acidification will be another serious threat facing coral reefs. As oceans absorb increasing amounts of carbon dioxide from the atmosphere, water acidity increases and pH decreases, severely impacting corals' ability to build their skeletons that form the foundation of reefs.

The 39 scientists who co-authored this study agree that if rising sea surface temperatures continue to cause increased frequency of bleaching and disease events, many corals may not have enough time to replenish themselves and this could lead to extinctions.

"These results show that as a group, reef-building corals are more at risk of extinction than all terrestrial groups, apart from amphibians, and are the most vulnerable to the effects of climate change," said Roger McManus, CI's vice president for marine programs. "The loss of the corals will have profound implications for millions of people who depend on coral reefs for their livelihoods."

Coral reefs harbor fish and other marine resources important for coastal communities. They also help protect coastal towns and other near-shore habitats from severe erosion and flooding caused by tropical storms.

Staghorn (Acroporid) corals face the highest risk of extinction, with 52 percent of species listed in a threatened category. The Caribbean region has the highest number of highly threatened corals (Endangered and Critically Endangered), including the iconic elkhorn coral (Acropora palmata) which is listed as Critically Endangered. The high biodiversity "Coral Triangle" in the western Pacific's Indo-Malay-Philippine Archipelago has the highest proportions of Vulnerable and Near-Threatened species in the Indo-Pacific, largely resulting from the high concentration of people living in many parts of the region.

Corals from the genera Favia and Porites were found to be the least threatened due to their relatively higher resistance to bleaching and disease. In addition, 141 species lacked sufficient information to be fully assessed and were therefore listed as Data Deficient. However, researchers believe that many of these species would have been listed as threatened if more information were available.

The results emphasize the widespread plight of coral reefs and the urgent need to enact conservation measures. "We either reduce our CO2 emission now or many corals will be lost forever," says Julia Marton-Lefèvre, IUCN Director General. "Improving water quality, global education and the adequate funding of local conservation practices also are essential to protect the foundation of beautiful and valuable coral reef ecosystems."

Coral experts participated in three workshops to analyze data on 845 reef-building coral species, including population range and size, life history traits, susceptibility to threats, and estimates of regional coral cover loss.

The reef-building corals assessment is one group of a number of strategic global assessments of marine species the GMSA has been conducting since 2006 at Old Dominion University in Norfolk, Virginia. Other assessments are being conducted on seagrasses and mangroves that are also important habitat-forming species, all marine fishes, and other important keystone invertebrates. By 2012, the GMSA plans to complete its comprehensive first stage assessment of the threat of extinction for over 20,000 marine plants and animals, providing an essential baseline for conservation plans around the world, and tracking the extinction risk of marine species.

The results of the coral species assessment will be placed on the IUCN Red List of Threatened Species in October 2008. Currently, the assessments can be found at http://www.sci.odu.edu/gmsa/about/corals.shtml.

###

NOTE: A press briefing will be held at 1pm EST Thursday July 10 in Room 123 at the International Coral Reef Symposium in Fort Lauderdale, Florida

Photos, video and other media materials available at: ftp.conservation.org/guest/CORALS
(Please copy and paste the link into your Internet browser)
User ID: mediaguest Password: paris0405 (all lowercase)

Contacts:
Kent Carpenter, GMSA Director, IUCN Species Programme, kcarpent@odu.edu, +1 757 683 3481 Cell: +1-757 641-0666
Susan Bruce, International Media Relations Director, Conservation International, sbruce@conservation.org, +1 703 341 2471 Cell: +1-571-721-8344
Lynette Lew, Marketing and Communications, IUCN Species Programme, lynette.lew@iucn.org, +41 22 999 0153
Carolin Wahnbaeck, Media Relations Officer, IUCN, carolin.wahnbaeck@iucn.org, +41 22 999 0313

Conservation International (CI) applies innovations in science, economics, policy and community participation to protect the Earth's richest regions of plant and animal diversity and demonstrate that human societies can live harmoniously with nature. Founded in 1987, CI works in more than 40 countries on four continents to help people find economic alternatives without harming their natural environments. For more information about CI, visit www.conservation.org.

The International Union for the Conservation of Nature (IUCN) helps the world find pragmatic solutions to our most pressing environment and development challenges by supporting scientific research; managing field projects all over the world; and bringing governments, NGOs, the UN, international conventions and companies together to develop policy, laws and best practice.

IUCN is the world's oldest and largest global environmental network. IUCN is a democratic union with more than 1,000 government and NGO member organizations, and some 10,000 volunteer scientists in more than 150 countries. IUCN's work is supported by 1,100 professional staff in 62 countries and hundreds of partners in public, NGO and private sectors around the world. www.iucn.org.

The IUCN Species Programme supports the activities of the IUCN Species Survival Commission and individual Specialist Groups, as well as implementing global species conservation initiatives. It is an integral part of the IUCN Secretariat and is managed from IUCN's international headquarters in Gland, Switzerland. The Species Programme includes a number of technical units covering Species Trade and Use, Red List, Freshwater Biodiversity Assessment, (all located in Cambridge, UK), and the Global Biodiversity Assessment Initiative (located in Washington DC, USA). www.iucn.org/species

The Global Marine Species Assessment (GMSA) began in late 2005 and is based in the Department of Biological Sciences at Old Dominion University in Norfolk, Virginia. This project will be the first global review of the conservation status of every marine vertebrate species, and of selected invertebrates and plants. The project involves a range of partners in compiling and analyzing all existing data on approximately 20,000 marine species, and will determine the risk of extinction according to the IUCN Red List Categories and Criteria. http://www.sci.odu.edu/gmsa/

The Wilkins Ice Shelf Is Experiencing Further Disintegration.


click on the image to see a larger version

The Wilkins Ice Shelf that we wrote about last March is experiencing further disintegration. The Ice Shelf has reduced further due to disintegration that is threatening the collapse of the ice bridge connecting the shelf to Charcot Island. Since the connection to the island in the image centre helps to stabilize the ice shelf, it is likely the break-up of the bridge will put the remainder of the ice shelf at risk. Once the connection to the island is gone, shelf might come under other possible changes due loss of stability that the shelf had due to the bridge.

An animation, comprised of images acquired by Envisat’s Advanced Synthetic Aperture Radar (ASAR) between 30 May and 9 July 2008, available at the ESA site (Link Below) shows the break-up event which began on the east (right) rather than the on west (left) like the previous event that occurred last month. By 8 July, a fracture that could open the ice bridge was visible. According to the image acquired on 7 July 2008, Dr Matthias Braun from the Center for Remote Sensing of Land Surfaces at Bonn University estimates the area lost on the Wilkins Ice Shelf during this break-up event is about 1350 km² with a rough estimate of 500 to 700 km² in addition being lost if the bridge to Charcot Island collapses.
This is how the shelf looked like in 1992.
ESA Article for more information and photos.