Friday, November 20, 2009

use bacteria to turn corn into biodegradable plastics.

Article Here - One word: bioplastics

At a new plant in Iowa, Metabolix will use bacteria to turn corn into biodegradable plastics.



A gene from the bacterium R. eutropha, turned out to code for an enzyme that allows bacteria to produce polyhydroxyalkanoate (PHA),a naturally occurring form of polyester

(Bacteria normally manufacture PHA as a way to store carbon and energy.)

bioplastics have been commercially available for about a decade, mostly in the form of plastic cups, bottles and food packaging. Most of those products are made from a type of plastic called polylactic acid (PLA), which is also produced from corn. PLA is similar to PHA, but PHA has higher heat resistance


Metabolix: Bio-industrial Evolution
"Working to create a new generation of highly versatile, sustainable, environmentally-friendly plastics and chemicals."


Monday, November 16, 2009

PNNL Economic Development: Harvesting Clean Energy 2010 Registration Open

Harvesting Clean Energy Conference X
February 7 - 9, 2010 | Kennewick, WA | Three Rivers Convention Center


PNNL is Pacific Northwest National Laboratory


Sent: Monday, November 16, 2009 7:44 AM
Subject: SPECIAL ANNOUNCEMENT from PNNL Economic Development: Harvesting Clean Energy 2010 Registration Open

 
The 10th annual Harvesting Clean Energy conference is coming to Eastern Washington – register now for special early bird rates!

Learn from a host of experts gathered in one place at the
Harvesting Clean Energy conference – February 7-9, 2010, in Kennewick, WA at the Three Rivers Convention Center.
·       How can farmers, ranchers, food processors and rural communities prosper in the new energy economy?  
·       Where are your best opportunities in: wind power, solar technologies, geothermal, small hydro, biomass or biofuels, upgrading to energy efficient equipment?  
·       What financing, technical expertise, and partners are available to help?  
Featuring:    

U.S. Senator Maria Cantwell of Washington State. Senator Cantwell chairs the Energy Subcommittee of the Senate’s Energy and Natural Resources Committee and is a leading voice for making America more energy independent.


David Kolsrud, CEO of DAK Renewable Energy.  David is a lifelong farmer and, for the past 13 years, renewable energy entrepreneur in which time he’s helped develop and fund over $1 billion worth of farmer-owned wind power and biofuel projects.


Richard Wynne, Director of Geopolitical and Policy Analysis, Boeing Commercial Airplanes. Richard will speak on Boeing's pursuit of sustainable biofuels and outline the potential agricultural role in developing renewable energy sources for aviation.

 
REGISTER EARLY TO RECEIVE LOW RATES

Thanks to the generous support of our sponsors, registration for the conference is remarkably affordable. Farmers, ranchers and other private individuals can register early for just $90, professionals for $140. Register on line at www.harvestcleanenergy/conference, or call Dana Colwell at 253-445-4575 for more information.

I look forward to seeing you there!
 
Rhys Roth

Saturday, November 14, 2009

Researchers Turn Algae Into High-Temperature Hydrogen Source

From Red Orbit:

Researchers Turn Algae Into High-Temperature Hydrogen Source

Platinum-catalyzed photosynthetic process creates high-yield sustainable source of hydrogen
In the quest to make hydrogen as a clean alternative fuel source, researchers have been stymied about how to create usable hydrogen that is clean and sustainable without relying on an intensive, high-energy process that outweighs the benefits of not using petroleum to power vehicles.

New findings from a team of researchers from the University of Tennessee, Knoxville, and Oak Ridge National Laboratory, however, show that photosynthesis – the process by which plants regenerate using energy from the sun – may function as that clean, sustainable source of hydrogen.

The team, led by Barry Bruce, a professor of biochemistry and cellular and molecular biology at UT Knoxville, found that the inner machinery of photosynthesis can be isolated from certain algae and, when coupled with a platinum catalyst, is able to produce a steady supply of hydrogen when exposed to light.

The findings are outlined in this week's issue of the journal Nature Nanotechnology.
Bruce, who serves as the associate director for UT Knoxville's Sustainable Energy and Education Research Center, notes that we already get most of our energy from photosynthesis, albeit indirectly.

The fossil fuels of today were once, millions of years ago, energy-rich plant matter whose growth also was supported by the sun via the process of photosynthesis. There have been efforts to shorten this process, namely through the creation of biomass fuels that harvest plants and covert their hydrocarbons into ethanol or biodiesel.

"Biofuel as many people think of it now -- harvesting plants and converting their woody material into sugars which get distilled into combustible liquids -- probably cannot replace gasoline as a major source of fuel," said Bruce. "We found that our process is more direct and has the potential to create a much larger quantity of fuel using much less energy, which has a wide range of benefits."

A major benefit of Bruce's method is that it cuts out two key middlemen in the process of using plants' solar conversion abilities. The first middle man is the time required for a plant to capture solar energy, grow and reproduce, then die and eventually become fossil fuel. The second middle man is energy, in this case the substantial amount of energy required to cultivate, harvest and process plant material into biofuel. Bypassing these two options and directly using the plant or algae's built-in solar system to create clean fuel can be a major step forward.

Other scientists have studied the possibility of using photosynthesis as a hydrogen source, but have not yet found a way to make the reaction occur efficiently at the high temperatures that would exist in a large system designed to harness sunlight.
Bruce and his colleagues found that by starting with a thermophilic blue-green algae, which favors warmer temperatures, they could sustain the reaction at temperatures as high as 55 degrees C, or 131 degrees F. That is roughly the temperature in arid deserts with high solar irradiation, where the process would be most productive. They also found the process was more than 10 times more efficient as the temperature increased.

"As both a dean and a chemist, I am very impressed with this recent work by Professor Bruce and his colleagues," said Bruce Bursten, dean of UT Knoxville's College of Arts and Sciences. "Hydrogen has the potential to be the cleanest fuel alternative to petroleum, with no greenhouse gas production, and we need new innovations that allow for hydrogen to be readily produced from non-hydrocarbon sources. Professor Bruce and his team have provided a superb example of how excellence in basic research can contribute significantly to technological and societal advances."

UFO crash hits wind turbine!

Be on the lookout for a UFO with a giant wind turbine blade sticking out of it. LOL

A UFO is believed to have struck a giant wind turbine in South Lincolnshire.

These blade are just massive, and you have to admit it really look like it hit something hard but there is no damage on the mast. Also one of the blades are just missing, how do you loose a telephone pole size windmill blade and can't find where it went?

http://www.ecotricity.co.uk/ Is the owner of the turbine.

In a later report they found out the real cause metal fatigue.
It wasn't ET 'wat done it'  10 February 2009 Interim report rules out UFO’s


Friday, November 13, 2009

Wind turbines make bat lungs explode

Researchers at the University of Calgary have found out why bats have been dying near wind turbines.



From: New Scientist

"Beware: exploding lungs" is not a sign one would expect to see at a wind farm. But a new study suggests this is the main reason bats die in large numbers around wind turbines.
The risk that wind turbines pose to birds is well known and has dogged debates over wind energy. In fact, several studies have suggested the risk to bats is greater. In May 2007, the US National Research Council published the results of a survey of US wind farms showing that two bat species accounted for 60% of winged animals killed. Migrating birds, meanwhile, appear to steer clear of the turbines.
Why bats - who echolocate moving objects - are killed by turbines has remained a mystery until now. The research council thought the high-frequency noise from the turbines' gears and blades could be disrupting the bats' echolocation systems.
In fact, a new study shows that the moving blades cause a drop in pressure that makes the delicate lungs of bats suddenly expand, bursting the tissue's blood vessels. This is known as a barotrauma, and is well-known to scuba divers.
"While searching for bat carcasses under wind turbines, we noticed that many of the carcasses had no external injuries or no visible cause of death," says Erin Baerwald of the University of Calgary in Canada.

Internal injuries

Baerwald and colleagues collected 188 dead bats from wind farms across southern Alberta, and determined their cause of death. They found that 90% of the bats had signs of internal haemorrhaging, but only half showed any signs of direct contact with the windmill blades. Only 8% had signs of external injuries but no internal injuries.
The movement of wind-turbine blades creates a vortex of lower air pressure around the blade tips similar to the vortex at the tip of aeroplane wings. Others have suggested that this could be lethal to bats, but until now no-one had carried out necropsies to verify the theory.
Baerwald and her colleagues believe that birds do not suffer the same fate as bats - the majority of birds are killed by direct contact with the blades - because their lungs are more rigid than those of bats and therefore more resistant to sudden changes in pressure.
Bats eat nocturnal insects including agricultural pests, so if wind turbines affected their population levels, this could affect the rest of the local ecosystems. And the effects could even be international. "The species being killed are migrants," says Baerwald. "If bats are killed in Canada that could have consequences for ecosystems as far away as Mexico."

Windy day

One solution could be to increase the minimum wind speed needed to set the blades in motion. Most bats are more active in low wind.
The study was funded by a number of bat conservation groups together with energy companies with a financial interest in wind energy, such as Shell Canada and Alberta Wind Energy.
Journal reference: Current Biology (vol 18 p R696)