Showing posts with label oil. Show all posts
Showing posts with label oil. Show all posts

04 December 2012

Comprehensive Analysis on Response Effort on the Deepwater Horizon Oil Spill Disaster Released


A detailed and comprehensive scientific and engineering analysis of the Deepwater Horizon oil spill has been prepared to better understand the disaster. It also provides additional research data to prepare for an effective response if ever it should happen again.

The Deepwater Horizon oil spill in the Gulf of Mexico is the largest oil related disaster in maritime history. It is estimated that 4.9 million barrels (189 million gallons) of oil was accidentally released into the Gulf in the three months that the well blew open. Starting April 20, 2010 when the rig exploded, the well was gushing around 53,000 barrels of oil a day. The leak was capped on July 15, 2010.

The fire on Deepwater Horizon burned for 36 hours and the rig sunk on April 22. The explosion killed eleven workers on the platform and injured 17 others.

On September 19, 2010, the US Government announced that the well is effectively and officially sealed.

20 August 2012

Integrated Hydropyrolysis and Hydroconversion Pushes Biofuel Production Forward To The Future


Renewable energy comes from sources that are naturally replenished. Natural occurring resources such as sunlight, wind, rain, ocean tides, and geothermal heat (geysers) can be utilized to provide energy without worrying about depletion.

Modern renewable energy can be substituted for fossil fuels in four areas: power generation, heating and cooling, transport fuels, and rural/off-grid energy services.

Biofuel promises an efficient, sustainable and renewable energy source for generations to come. It is derived through biological carbon fixation. Carbon fixation is the reduction of inorganic carbon (carbon dioxide) to organic compounds by living organisms.

Biological material from living, or recently living organisms called biomass is processed to produce these biofuels. One such example of biomass source is algae. Since it can be cultivated in sewage water or saltwater, it does not compete with food crops in terms of land space or freshwater sources.

Fueling the future with renewable gasoline and diesel

A new process for converting municipal waste, algae, corn stalks and similar material to gasoline, diesel and jet fuel is showing the same promise in larger plants as it did in laboratory-scale devices, the developers reported here today. It was part of the 244th National Meeting & Exposition of the American Chemical Society (ACS), the world's largest scientific society, which continues through Thursday.

"These results are essential in establishing the credibility of a process that may seem too good to be within the realm of possibility," said Martin Linck, Ph.D. "However, we are moving steadily toward having multiple demonstration-scale facilities in operation by 2014, with each facility producing a range of 3,500-17,500 gallons of fuel a day from non-food plant material. We will be designing commercial-scale facilities that could produce as much as 300,000 gallons per day from the same kinds of feedstocks."

The technology, termed Integrated Hydropyrolysis and Hydroconversion (IH2), already has the credibility of its developer, the Gas Technology Institute (GTI), where Linck is a scientist. Located in Des Plaines, Ill, GTI is a nonprofit energy technology research organization whose accomplishments during the last 70 years include nearly 500 products, 750 licenses and more than 1,200 associated patents.

26 July 2012

MIT News: Bacterial Gene Discovered Enabling Survival in Extreme Conditions


The oil slick as seen from space by NASA's Terra satellite on May 24, 2010

Newfound gene may help bacteria survive in extreme environments

In the days following the 2010 Deepwater Horizon oil spill, methane-eating bacteria bloomed in the Gulf of Mexico, feasting on the methane that gushed, along with oil, from the damaged well. The sudden influx of microbes was a scientific curiosity: Prior to the oil spill, scientists had observed relatively few signs of methane-eating microbes in the area.

Now researchers at MIT have discovered a bacterial gene that may explain this sudden influx of methane-eating bacteria. This gene enables bacteria to survive in extreme, oxygen-depleted environments, lying dormant until food — such as methane from an oil spill, and the oxygen needed to metabolize it — become available. The gene codes for a protein, named HpnR, that is responsible for producing bacterial lipids known as 3-methylhopanoids. The researchers say producing these lipids may better prepare nutrient-starved microbes to make a sudden appearance in nature when conditions are favorable, such as after the Deepwater Horizon accident.

The lipid produced by the HpnR protein may also be used as a biomarker, or a signature in rock layers, to identify dramatic changes in oxygen levels over the course of geologic history.

“The thing that interests us is that this could be a window into the geologic past,” says MIT postdoc Paula Welander, who led the research. “In the geologic record, many millions of years ago, we see a number of mass extinction events where there is also evidence of oxygen depletion in the ocean. It’s at these key events, and immediately afterward, where we also see increases in all these biomarkers as well as indicators of climate disturbance. It seems to be part of a syndrome of warming, ocean deoxygenation and biotic extinction. The ultimate causes are unknown.”

Welander and Roger Summons, a professor of Earth, atmospheric and planetary sciences, have published their results this week in the Proceedings of the National Academy of Sciences.

A sign in the rocks

Earth’s rocky layers hold remnants of life’s evolution, from the very ancient traces of single-celled organisms to the recent fossils of vertebrates. One of the key biomarkers geologists have used to identify the earliest forms of life is a class of lipids called hopanoids, whose sturdy molecular structure has preserved them in sediment for billions of years. Hopanoids have also been identified in modern bacteria, and geologists studying the lipids in ancient rocks have used them as signs of the presence of similar bacteria billions of years ago.

But Welander says hopanoids may be used to identify more than early life forms: The molecular fossils may be biomarkers for environmental phenomena — such as, for instance, periods of very low oxygen.

To test her theory, Welander examined a modern strain of bacteria called Methylococcus capsulatus, a widely studied organism first isolated from an ancient Roman bathhouse in Bath, England. The organism, which also lives in oxygen-poor environments such as deep-sea vents and mud volcanoes, has been of interest to scientists for its ability to efficiently consume large quantities of methane — which could make it helpful in bioremediation and biofuel development.

For Welander and Summons, M. capsulatus is especially interesting for its structure: The organism contains a type of hopanoid with a five-ring molecular structure that contains a C-3 methylation. Geologists have found that such methylations in the ring structure are particularly well-preserved in ancient rocks, even when the rest of the organism has since disappeared.

20 June 2012

Algae Shows Great Promise As A Next Generation Sustainable and Renewable Bio Fuel


Algae Biofuel is being touted as an efficient, sustainable and renewable energy source for generations to come.

Algae has more oil per pound compared to traditional biological sources such as corn and soybean. Since it can be cultivated in sewage water or saltwater, it does not compete with food crops in terms of land space or freshwater sources.

Algae is also easy to cultivate. It can grow twenty to thirty times faster than traditional food crops with a harvesting cycle of one to ten days. This gives this alternative fuel source an almost abundant and continuous supply all year round.

For examply, biodiesel is typically sourced from soybeans. With soybeans, the yield per acre per year is about 50 gallons. Comparing this to bio-oil that can be sourced from algae, the yield would be anywhere between 1,000 to 5,000 gallons per acre per year.

The reason for this is because algae efficiently converts sunlight to biomass. Through chemical processes, oil can be extracted from this and converted to various oils and fuels that can even be used in combustible engines.

Toward a more economical process for making biodiesel fuel from algae

Scientists today described an advance toward a long-sought economical process that could turn algae, like the stuff of pond scum, into a revolutionary new and sustainable source of biodiesel and other "green" fuels. Their report on the use of an environmentally friendly process for extracting oil from algae came at a session of 16th annual Green Chemistry & Engineering Conference, being held here June 18-20 by the Green Chemistry Institute, part of the American Chemical Society (ACS), the world's largest scientific society.

"Algae has great promise as a next-generation biofuel, a fuel that is sustainable and renewable," explained Julie Zimmerman, Ph.D., who leads the research team. "It has more oil per pound than corn and soybeans, does not divert crops from the food supply and can potentially be grown in sewage water and seawater without impacting the freshwater supply." The presentation was part of a symposium on green fuel sources, abstracts for which appear below.

Lindsay Soh, a graduate student in Zimmerman's lab, described their efforts toward a simple process that would extract the fatty molecules called lipids used to make biodiesel from algae and transform them into usable fuel in one fell swoop. This could make biodiesel production from algae cheaper, faster and greener than current methods, which require separate steps — each with its own vessel and chemicals — to perform those operations. This "one-pot" reaction uses so-called supercritical carbon dioxide, which uses elevated pressures and temperatures so that it fills its container like a gas but is as dense as a liquid.

28 October 2011

Gasoline from Algae


Phil Savage and a team of engineers at the University of Michigan are at the forefront of a new study. Growing gasoline; Oil manufactured by algae.

Oil from algae. That's the future energy source we may be looking at. And hey, it's as green as it can get. Even the algae are literally green!

Using treated sewage as a source for their nutrients, these algae can grow real fast. The reason? They are very efficient in converting sunlight into biomass.

PhD student Bobby Levine says, "Typically, in America, we make biodiesel out of soybeans and we get something on the order of 50 gallons of biodiesel per acre per year from soy. With algae, the estimates range very widely, but you can get anywhere from between 1,000 to 5,000 gallons of bio-oil per acre per year."

The oilfield of the future will be a farm. And Savage's process is two times more efficient than present technology in algae oil production.

He elaborates, "We use more of what's there. You know, with the biodiesel process, people are excited if they have an algae that's 50 percent oil, but then right away they're only using 50 percent of the mass, of the biomass. With our approach, we’d like to be able to liquefy, you know, 100 percent..."

Video: Biofuel by the University of Missouri Systems:


In order to achieve this is similar to how crude oil is converted to usable fuel. The algae after being "treated" in a hot sand bath, is brought to a so called refinery. In this case, another laboratory. Here, researchers are creating molecules or catalysts that will rearrange the structure of the algae in a way that they will resemble fuel that can be used in a combustible engine. And to add to it, they try to squeeze every last drop of fuel they can get.

Study reporter Lisa Raffensperger says, "They’ll be genetically modifying microbes like E. coli to digest the waste. Ideally, the waste will also be converted into useful fuel. It’s just one more way to “close the loop,” as these researchers say. To minimize energy input and reduce carbon emissions..."

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