Monday, July 23, 2007

Generation IV Nuclear--Toward an Environmentally Friendlier Nuclear Fission Reactor

Nuclear energy is a likely alternative to the increased use of coal, as oil supplies begin to plateau over the next few decades. Next generation nuclear fission reactors will not have the massive need for coolant water, and will thus be environmentally friendlier. Their safer designs--when compared to contemporary reactors--should reduce some public concerns about moving toward more nuclear power plants.

The US government energy labs are actively soliciting new reactor designs, in the knowledge that there are few alternatives to nuclear energy over the next half century, if humans are to significantly move away from fossil fuels.
The Energy Department's Idaho National Laboratory is conducting the program that seeks to use cutting-edge technology in building a high temperature reactor capable of producing hydrogen, electricity and/or process heat. Officials said such a nuclear power plant would reduce greenhouse gas emissions by enabling nuclear energy to replace fossil fuels in the petrochemical and transportation industries.

"Proceeding with conceptual design for the Next Generation Nuclear Plant brings the Department of Energy another step closer to developing this advanced new technology," Assistant Secretary for Nuclear Energy Dennis Spurgeon said. "Through this effort, (the department) will foster a public-private partnership to complete this development and spur the commercial scale deployment of advanced clean and safe nuclear energy as quickly as possible."
Source

Read more about next generation fission here, here, and here.

The last link, Energy from Thorium, is particularly thought provoking, because it introduces a reactor concept that will not add to the concern over the propagation and breeding of weapons grade fissionable materials. Thorium does not breed Plutonium.

High temperature reactors that do not use water as the primary coolant should allow the use of nuclear energy in more arid climates, where cooling water is scarce. These designs should also be more useful in mining both oil sands and shale oils in situ.

China has already begun the planning and development process for a rapid expansion of
Chinese nuclear energy capacity. And although recent Japanese earthquakes are causing the Japanese to re-think their commitment to nuclear, for less earthquake-prone areas in the developed world, nuclear is a natural.

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Sunday, July 15, 2007

Greece Opts for Fuel Cell Submarine

While fuel cell powered submarines cannot stay submerged as long as nuclear submarines, they are able to remain underwater for a respectable 3 weeks before needing to resurface.
The HDW Class 214 submarine has a fuel cell-generated power supply, allowing it to operate entirely on hydrogen. The fuel cell, which produces electrical energy from oxygen and hydrogen, allows the new submarine to cruise under water for up to three weeks without resurfacing. Conventional diesel-electric submarines typically deplete their battery power after a few days cruising under water. In addition, the fuel cell makes no noise and produces no detectable exhaust heat, in turn making the submarine virtually undetectable.

This is the most advanced conventional submarine in the world and the Greek State was the first in the world to order it.
Source

The power system is based upon technology developed by Air Products.
The fueling technology is based on Air Products’ unique cryogenic hydrogen compressors (CHCs), which are used in conventional hydrogen supplies, as well as in bus fueling applications.

“We are paving the way to the future hydrogen economy, by already supplying liquid hydrogen from Central Europe, as far as Ireland, Italy, Spain and Israel. By supplying liquid hydrogen as well as fueling equipment, we are able to offer a complete and safe package to our customers. We are proud to have already supplied hydrogen fueling equipment, as well as liquid hydrogen, to fuel submarines from the German Navy and now the Hellenic Navy, and we hope more will adopt this revolutionary technology soon,” said Ian Williamson, general manager-Future Energy Solutions, Air Products Europe.
Source

It is important for Greece to have a submarine capability for patrolling its many kilometers of coastline. Along with many other countries on the Mediterranean, Greece is under assault from hundreds of thousands of would-be immigrants, many terrorists among them, who seek to flee a life of oppression in muslim countries to the south.

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Brazil Going Nuclear

Brazil is best known in the energy world for using sugar cane to produce ethanol for fuel. But Brazil also has the world's largest known uranium reserves. With the passage of time, uranium is becoming more important than petroleum, for many uses.

Latin America is a place of current unrest, largely due to the influence of Hugo Chavez in Venezuela. Chavez supports the bloody revolutionary movement FARC in Colombia, and is trying to influence the political future of every other country in Latin America--with some success in Ecuador and Bolivia.

Brazil, with its vast mineral resources and large economy, is the main obstacle to Chavez' desire to dominate Latin America. If Chavez cannot bully Brazil through its recent huge purchases in arms from Spain, Russia, China, etc. Hugo will feel compelled to take more forceful measures.

Brazil is feeling the heat from its neighbor to the north. That is why Brazil is converting its attack submarines from closed-cycle fossil fuel to nuclear fuel.
July 15, 2007: Brazil is going to invest half a billion dollars over the next eight years to develop a nuclear power plant for submarines (SSNs, nuclear attack subs). Brazil has two nuclear power plants, and the largest deposits of Uranium on the planet. The submarine power plant would be designed to fit in an French or German submarine. Both of these countries are now building subs with closed cycle power plants, which take up nearly as much space as a nuclear power plant would. But the closed cycle plants still use fossil fuel, and Brazil wants to reduce use of fossil fuels. Thus Brazil would replace its current five conventional subs with four or five nuclear ones. These boats would be used to patrol the sea lanes off Brazil's long Atlantic coast.
Source

For large scale electric power generation, for powering naval vessels at sea for long cruises, for powering large underground or undersea shelters, growing centers, and shelters--nothing is as good as nuclear power. And despite the best efforts of "environmentalist activists," nuclear energy is becoming safer and more reliable at every stage of its cycle.

Brazil understands the threat that Venezuela poses to the future of Latin America. Brazil does not intend to become a "client" of Chavez, nor to allow Hugo to become the regional hegemon.

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Wednesday, July 11, 2007

Better Large Scale Battery Storage


Al Fin is always spouting off about the need for "utility scale energy storage" for load-leveling, and for bringing more renewable energy sources online--such as solar and wind. Al Fin's favourite technology is the redox flow cell, but other storage technologies are making a bid to play this very important role.
Using so-called NaS batteries, utilities could defer for years, and possibly even avoid, construction of new transmission lines, substations and power plants, says analyst Stow Walker of Cambridge Energy Research Associates. They make wind power — wildly popular but frustratingly intermittent — a more reliable resource. And they provide backup power in case of outages, such as the one that hit New York City last week.

Such benefits are critical, because power demand is projected to soar 50% by 2030 and other methods of expanding the power supply are facing growing obstacles. Congress is likely to cap carbon dioxide emissions by traditional power plants to curtail global warming. Meanwhile, communities are fighting plans for thousands of miles of high-voltage transmission lines needed to zap electricity across regions.

....American Electric Power (AEP), one of the largest U.S. utilities, has been using a 1.2 megawatt NaS battery in Charleston, W.Va., the past year and plans to install one twice the size elsewhere in the state next year. Dozens of utilities are considering the battery, says Dan Mears, a consultant for NGK Insulators, the Japanese company that makes the devices.

"If you've got these batteries distributed in the neighborhood, you have, in a sense, lots of little power plants," Walker says. "The difference between these and diesel generators is these batteries don't need fuel" and don't pollute.

The NaS battery is the most advanced of several energy-storage technologies that utilities are testing. The oldest and most widespread form of energy storage in the USA, pumped hydroelectricity, collects water after it spins a turbine and uses a small amount of electricity to send it back and repeat the process.

Lead-acid batteries — the same kind used in cars — were installed by Southern California Edison in 1988. But the batteries, though inexpensive, typically fill warehouse-size buildings and last about five years. That's because the acid that connects positive and negative electrodes corrodes components.

An NaS battery, by contrast, uses a far more durable porcelain-like material to bridge the electrodes, giving it a life span of about 15 years, Mears says. It also takes up about a fifth of the space. Ford Motor pioneered the battery in the 1960s to power early-model electric cars; NGK and Tokyo Electric refined it for the power grid.

Since the 1990s, Japanese businesses have installed enough NaS batteries to light the equivalent of about 155,000 homes, says Brad Roberts, head of the Electricity Storage Association. In the USA, AEP is using the 30-foot-wide by 15-foot-igh battery to supply 10% of the electricity needs of 2,600 customers in north Charleston, says Ali Nourai, AEP manager of distributed energy. The battery, which cost about $2.5 million, is charged by generators from the grid at night, when demand and prices are low, and discharged during the day when power usage peaks.

....A more intriguing goal is to wring more energy out of the wind farms that are cropping up across the country. Wind typically blows hard at night when power demand is low, producing energy that cannot be used. When demand peaks midday, especially in the summer, wind is often sporadic or absent. NaS batteries could let AEP store wind-generated power at night for daytime use.

Next year, AEP plans to install another NaS battery in West Virginia to provide backup power in case of an outage — the first such application of the technology, Nourai says. The battery would kick in automatically, so customers would see no disruption.

Other utilities are planning or considering the technology. In Long Island, N.Y., a group of utilities plans this summer to install an NaS battery at a bus depot. The battery is charged at night, when power prices are low, and discharged during the day to pump natural gas into tanks to provide fuel for the buses, says Mike Saltzman of the New York Power Authority. That cuts electric costs for the bus company and eases stresses on the grid. Pacific Gas & Electric is leaning toward installing a much larger, 5-megawatt battery by 2009, enough to power about 4,000 homes, says PG&E's Jon Tremayne.

....Meanwhile, other storage devices are gaining traction, too. A group of Iowa municipal utilities plans to use wind turbines to compress air during off-peak hours that will be stored in an underground cavern. The air would be released at peak periods to run turbines and generate power for about 200,000 homes. Another technology, the flywheel, has a massive cylinder that can spin for days after being started by a generator. The cylinder can then activate a turbine to supply electricity for a few seconds or minutes when it's needed, for instance, to head off an interruption to a computer center from a lightning strike.
Source

Homes, businesses, neighborhoods, and larger areas all need energy storage scaled to their needs. This is one of the more important energy issues at present, yet it gets relatively little attention.

Hat tip Fatknowledge blog

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Friday, July 06, 2007

Small Scale Solutions

The image above depicts a Zotloterer Gravitational Vortex that can be used to generate electricity from a small head of water, and at the same time aerate the stream.
The aspect of the power plant reminds a bit of an upside-down snail. The water passes through through a large, straight inlet, then passes tangentially into a round basin, forming a powerful vortex (whirlpool), which finds its outlet at the center bottom of the shallow basin.

The turbine does not work on pressure differential but on the dynamic force of the vortex. Not only does this power plant produce a useful output of electricity, it also aerates the water in a gentle way.

Of course the use of water vortices has been pioneered by another Austrian - Viktor Schauberger, who was also known as the "water wizard". He floated hard-to transport heavy logs from remote regions of the Austrian forests, not accessible at the time by streets, to where they would be milled and processed. The feat was accomplished by carefully regulating the water's temperature and by inducing a rolling, longitudinal vortex motion in the water.
Source

Look at this interesting approach to converting sunlight directly to fuel through artificial photosynthesis.
Natural photosynthesis is a good interim measure, but Brudvig and colleagues decided to design an artificial system to harness sunlight with greater efficiency, he said.

"Our goal is artificial photosynthesis, to move electrons not using chlorophyll," he said.

Brudvig is experimenting with manganese complexes hooked onto nano particles of titanium oxide and suspended in water.

Nano particles are the material of choice because they maximize surface area, essential to a process that depends on light.

Both manganese and titanium are common in Earth’s crust and relatively inexpensive, he said. Earth also has a large supply of water.

The manganese molecule can absorb energy from sunlight and use it to split water molecules into oxygen and hydrogen. The plan is for the manganese to split a water molecule into one oxygen atoms, two positively charged hydrogen nuclei and two negatively charged electrons, he said.

These electrons are transported to the titanium oxide, where light boosts them into a higher energy state andconducts them to another reaction surface that create hydrogen, methane, methanol, and other fuels.

"Any fuel has excess electrons. We could transfer the moving electrons to make hydrogen, and then use hydrogen to turn carbon dioxide into methanol," Brudvig said. That is, in chemical symbols, CO2 + 6 e- + 6 H+ ---> (CH3 OH) + H2O.

Excess oxygen from the water would be released to the atmosphere.


Check out these Turkish phase transition tiles for keeping cool in the summer heat.

Or this architectural innovation using solar powered pumps and fans that could save up to 40% of the fossil fuels used to heat and cool the average home.

This Indian plan for generating electricity from plastic waste may help clean up landfills and trash piles.

Finally, this improved approach to radiant floor heating may help bring this energy saving technology to more new homes.

Hat tip keelynet.

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Monday, July 02, 2007

News from the Nuclear Front

As more countries begin ramping up plans for new nuclear power plants, IBM has committed itself to playing a leading advisory role.
Big Blue's Global Center of Excellence for Nuclear Power sits in southern France, near Cadarache, the site of the International Thermonuclear Experimental reactor fusion project.

The center will provide consultation for the design, construction, safety and operations of power plants based on IBM software, hardware and services. The company is eager to vend its expertise to utility companies looking to build new reactors or put older ones back in shape after the EU opened the energy market to all Europeans at the beginning of July. Theoretically, all Europeans are free to get their energy from any company, making a market ripe for competition — and perhaps consulting.

"France possesses world-class expertise in the area of nuclear power," IBM Lead Architect Frederic Bauchot said. "Establishment of the Center enables IBM to utilize not only local IBM talent and experience in nuclear systems design and implementation, but also advanced skills of a leading nuclear power market".
Source

Meanwhile, South Korea will be assisting the Ukraine in construction and management of new nuclear plants. In India, nuclear scientists are designing an advanced Thorium reactor.
The novel Fast Thorium Breeder Reactor (FTBR) being developed by V. Jagannathan and his team at the Bhabha Atomic Research Centre (BARC) in Mumbai has received global attention after a paper was submitted to the International Conference on Emerging Nuclear Energy Systems (ICENES) held June 9-14 in Istanbul.

Power reactors of today mostly use a fissile fuel called uranium-235 (U-235), whose "fission" releases energy and some "spare" neutrons that maintain the chain reaction. But only seven out of 1,000 atoms of naturally occurring uranium are of this type. The rest are "fertile", meaning they cannot fission but can be converted into fissionable plutonium by neutrons released by U-235.

Thorium, which occurs naturally, is another "fertile" element that can be turned by neutrons into U-233, another uranium isotope. U-233 is the only other known fissionable material. It is also called the "third fuel".

Thorium is three times more abundant in the earth's crust than uranium but was never inducted into reactors because - unlike uranium - it has no fissionable atoms to start the chain reaction.

But once the world's uranium runs out, thorium - and the depleted uranium discharged by today's power reactors - could form the "fertile base" for nuclear power generation, the BARC scientists claim in their paper.
Source

Development of alternative fuels for nuclear reactors can not come soon enough, since the market for uranium is threatening to burst through the roof.

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Wednesday, June 27, 2007

Giant Microwave Oven Says: Fuck You, Peak Oil!

What if you could take your used plastic containers, and turn them into oil and natural gas? What would that mean for peak oil? Especially if the plastic containers had been made from potatoes? Peak oil, meet Mr. Microwave Oven
A US company is taking plastics recycling to another level – turning them back into the oil they were made from, and gas.

All that is needed, claims Global Resource Corporation (GRC), is a finely tuned microwave and – hey presto! – a mix of materials that were made from oil can be reduced back to oil and combustible gas (and a few leftovers).

Key to GRC’s process is a machine that uses 1200 different frequencies within the microwave range, which act on specific hydrocarbon materials. As the material is zapped at the appropriate wavelength, part of the hydrocarbons that make up the plastic and rubber in the material are broken down into diesel oil and combustible gas.

GRC's machine is called the Hawk-10. Its smaller incarnations look just like an industrial microwave with bits of machinery attached to it. Larger versions resemble a concrete mixer.

"Anything that has a hydrocarbon base will be affected by our process," says Jerry Meddick, director of business development at GRC, based in New Jersey. "We release those hydrocarbon molecules from the material and it then becomes gas and oil."
Source

Microwaves can do a lot of things. And they take their abilities very seriously. Seriously. Don't piss them off!

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Monday, June 25, 2007

Uranium Prices Stimulate Mining Rush for Nuclear Fuel

With uranium prices shooting upward with the news of a surge in worldwide construction of nuclear reactors, uranium prospectors have gone a little crazy.
Utah mining prospector Kyle Kimmerle has more than a hunch that uranium will make him rich. It is a conviction so strong he has bet his house on it.

"We literally spent every dollar we had in savings, hawked and sold our houses and put everything we owned into this. We went all in," said Kimmerle, who runs a funeral home in this Canyonlands city. "My wife is scared, but I'm not."

He is among a rush of prospectors in the Colorado Plateau mineral belt who are thumping stakes into public land and registering claims, hoping to get rich on the back of record uranium prices.

The boom is reviving the fortunes of a storied mining area in the U.S. Southwest where large uranium ore deposits were first tapped for the voracious Cold War nuclear weapons program in the early 1950s, before suffering a slump.

The Bureau of Land Management said this month a new wave of prospectors have registered some 3,700 claims in the Moab and Monticello areas since October 1 last year, more than twice the total for whole of the previous year.

Prospectors are banking on strong demand for uranium from a resurgent nuclear power industry, as high oil prices and a global effort to clamp down on greenhouse gases blamed for climate change have pushed prices for the metal to $135 per pound, from just $7 in 2000.
Source

This is a modern gold rush, for uranium. Modern societies are addicted to high doses of concentrated energy, and the addiction will only get worse with time. With oil production currently on a plateau, nuclear and coal are the natural fallback options.

There are many safer reactor designs, than the ones most commonly in use around the world. In China, with a heavy death and sickness toll from mining accidents and pollution/contamination of air and water, nuclear power makes sense. Even in the US, where pollution decreases every year, and mining deaths are less common, trading fossil fuel for safer nuclear plants is reasonable.

Certainly there are better means of long term waste disposal than are currently utilised, and the idea of recycling nuclear wastes back into fuel is beginning to catch on with planners and policy makers.

If you own stock in uranium mines, and have no need to sell immediately, you might want to watch and see how things develop.

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Sunday, June 17, 2007

Finally! A Rational Carbon Tax


Carbon trading schemes are hopelessly mired in corruption and fraud. A fair carbon tax may work better, if a rational scheme for such a tax could be devised.
The IPCC predicts a warming rate in the tropical troposphere of about double that at the surface, implying about 0.2C to 1.2C per decade in the tropical troposphere under greenhouse-forcing scenarios. That implies the tax will climb by $4 to $24 per tonne per decade, a much more aggressive schedule of emission fee increases than most current proposals. At the upper end of warming forecasts, the tax could reach $200 per tonne of CO2 by 2100, forcing major carbon-emission reductions and a global shift to non-carbon energy sources.

Global-warming activists would like this. But so would skeptics, because they believe the models are exaggerating the warming forecasts. After all, the averaged UAH/ RSS tropical troposphere series went up only about 0.08C over the past decade, and has been going down since 2002. Some solar scientists even expect pronounced cooling to begin in a decade. If they are right, the T3 tax will fall below zero within two decades, turning into a subsidy for carbon emissions.

....Under the T3 tax, the regulator gets to call everyone's bluff at once, without gambling in advance on who is right. If the tax goes up, it ought to have. If it doesn't go up, it shouldn't have. Either way we get a sensible outcome.

But the benefits don't stop there. The T3 tax will induce forward-looking behaviour. Alarmists worry that conventional policy operates with too long a lag to prevent damaging climate change. Under the T3 tax, investors planning major industrial projects will need to forecast the tax rate many years ahead, thereby taking into account the most likely path of global warming a decade or more in advance.

And best of all, the T3 tax will encourage private-sector climate forecasting. Firms will need good estimates of future tax rates, which will force them to look deeply, and objectively, into the question of whether existing climate forecasts have an alarmist bias. The financial incentives will lead to independent reassessments of global climate modelling, without regard to what politicians, the IPCC or climatology professors want to hear.

Policymaking in the real world is messy, and ideas that sound good in theory can come out hopelessly gummed up with extraneous provisions that dilute or contradict the original purpose. But as a thought experiment, I find the T3 tax clarifies a lot of issues.
Source

Read the whole thing. It is clear that apocalyptic prophecies that aspire to public policy need to be called to account. Alarmist bureaucrats and "scientists" must be forced to "put their money where their mouths are."

Alarmist predictions that can not possibly come true before everyone now alive is long since dead, are not worth taking seriously. Benchmarks must be set and adhered to. Otherwise it is all a cynical game on the part of the IPCC and its pet computer modelers.

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Sunday, June 10, 2007

Methane Hydrate Reserves--Up to One Half the Amount of Other Fossil Fuel Reserves Worldwide

Methane hydrates may contain up to half the energy of other fossil fuel reserves. China does not want to be left out of the act, and is actively working to develop the methane hydrates lying in the northern part of the South China Sea.
China announced yesterday it had made a breakthrough in excavating natural gas hydrate, the so-called “flammable ice”, which is believed to be a potential natural energy source. Zhang Hongtao, deputy director-general of China Geological Survey (CGS), said gas hydrate samples were successfully collected from the northern part of the South China Sea last month. China is the fourth country after the United States, Japan and India to make such a technological achievement. Zhang said the development was expected to ease the country’s dependence on oil and coal.
Source
Methane hydrates, or "fire in ice", will require special technologies in order to be exploited, because they lie underwater off continental shelfs. As you can see on the map, the China Sea deposits are not considered among the larger deposits. It is quite likely that current estimates of undersea fossil fuel resources are woefully understated.

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Monday, June 04, 2007

New Lighting Technology

We need better lighting. Incandescent bulbs are inefficient, but fluorescent bulbs contain toxic materials such as mercury. Fortunately scientists at the University of Illinois are working on a new lighting technology that is brighter than incandescents, and may eventually be more efficient than fluorescents.
“Built of aluminum foil, sapphire and small amounts of gas, the panels are less than 1 millimeter thick, and can hang on a wall like picture frames,” said Gary Eden, a professor of electrical and computer engineering at the U. of I., and corresponding author of a paper describing the microcavity plasma lamps in the June issue of the Journal of Physics D: Applied Physics.

Like conventional fluorescent lights, microcavity plasma lamps are glow-discharges in which atoms of a gas are excited by electrons and radiate light. Unlike fluorescent lights, however, microcavity plasma lamps produce the plasma in microscopic pockets and require no ballast, reflector or heavy metal housing. The panels are lighter, brighter and more efficient than incandescent lights and are expected, with further engineering, to approach or surpass the efficiency of fluorescent lighting.

The plasma panels are also six times thinner than panels composed of light-emitting diodes, said Eden, who also is a researcher at the university’s Coordinated Science Laboratory and the Micro and Nanotechnology Laboratory.

A plasma panel consists of a sandwich of two sheets of aluminum foil separated by a thin dielectric layer of clear aluminum oxide (sapphire). At the heart of each lamp is a small cavity, which penetrates the upper sheet of aluminum foil and the sapphire.
Source

Such lightweight, thin profile lighting would be in demand by upscale designers, even if the efficiencies were not much better than that of incandescents. But with efficiencies challenging fluorescents, this lighting technology should find ready acceptance if efficient production methods are devised.

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Sunday, May 20, 2007

Big Money Abhors a Vacuum--Wildcatters Enter the New Oil Rush

Big oil companies have reduced their oil exploration efforts since the 1980s. That means there is big money to be made in finding new oil fields--and the small wildcatters are the ones who are going to be cashing in. Venture capital is beginning to find the wildcatters with the best chances of hitting crude.
The American oil patch, once left to languish during an extended period of low oil prices, is on the rebound. Wildcatters like Mr. Bryant are ready to pounce. With oil prices now hovering around $60 a barrel — three times higher than they were throughout the 1990s — the industry is expanding at a pace last seen decades ago.

“The oil industry has changed dramatically in the last 20 years,” Mr. Bryant says. “Barriers to entry have dropped significantly. It doesn’t matter if you’ve been in the business 100 years or 100 days.”

Easily available capital and technology, once the preserve of traditional oil companies, are reordering the business. Investors are lining up to finance energy projects while leaps in computing power, imaging technology and collaborative online networks now allow the smallest entities to compete on an equal footing with the biggest players.

“There’s a lot of money out there looking for opportunities,” said John Schaeffer, the head of the oil and gas unit at GE Energy Financial Services. “It seems like everyone wants to own an oil well now.”

...Instead of looking for new petroleum sources, the big oil companies now spend more money on strategic and financial maneuvers like acquisitions and share buybacks, according to analysts. Many have also bolstered dividend payments in order to please their shareholders. A decade ago, oil companies spent $2 on exploration for every $1 spent on acquisitions; today, it’s the other way around. Exploration, which once took a place of pride among major oil companies, now takes a back seat.

But analysts warn that the industry should be expanding exploration, because much more energy will be needed in coming years. According to the International Energy Agency, the world will be consuming 115 million barrels of oil a day by 2030, up from 85 million today.

“It’s hard to explain why exploration isn’t getting more attention,” Mr. Smith said. Oil companies, he said, “have become more risk-averse.”

For whatever reasons Big Oil is forgoing exploration, that reluctance has opened a door to entrepreneurs like Mr. Bryant. Cobalt, taking advantage of the lush financing available to energy start-ups, has secured $600 million from investors like Goldman Sachs and Carlyle/Riverstone, a private equity firm. It is about to secure an additional $600 million to $900 million from its investors.

....Finding, developing and operating costs in the Gulf of Mexico run below $20 a barrel. With oil prices at $65 a barrel, if the company finds a field that flows at 50,000 barrels a day, it can potentially earn more than $2 million a day — or $800 million a year — from a single field. “The whole game is to put a string of those together,” Mr. Bryant says.

....Cobalt is looking for oil reserves ranging from 100 million to 300 million barrels. While a big discovery can instantly earn the company billions, there is no guarantee that the company will find oil at all. “How are you successful in oil and gas exploration? It doesn’t need a whole committee,” said Mike Lentini, a 49-year-old geologist who spent 25 years looking for oil at Shell and recently moved to Cobalt. “If you go the consensus path, you get the average result rather than what is truly path-breaking.”

On a recent afternoon here, Mr. Byrant, who had just returned from a visit to the Middle East, said Cobalt would never be able to compete with Big Oil everywhere. But he said independent companies now had more than a fighting chance.

“Exploration has become a game of super technology,” he says. “That’s a lot different from the early days of the industry when wildcatters would just drill a well, cross their fingers and hope for the best.”
Source

For more on the promise of new oil exploration technologies, see here, here, here, and here.


Such independent operators could not operate in most "oil countries", where corrupt government leaders hover--waiting to pounce on new finds and nationalise them to enrich their Swiss bank accounts.

Hat tip instapundit.

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Friday, May 18, 2007

Peak Oil: Meet Biofuels

The entire transportation infrastructure is based on combustion engines. Combustion engines feature very high energy density combined with very high power density. Such a combination is difficult to achieve with electric storage and fuel cell technologies. So it is natural that a lot of venture capital is being invested in the development of liquid biofuels, to substitute for fossil fuels currently used in the transportation industry.

Biodiesel, cellulosic butanol, and now pyrolytic liquid biofuels offer a renewable way to ease the transition from a fossil fuel based infrastructure to an eventual combustion-free transportation and energy infrastructure.
A team of University of Georgia researchers has developed a new biofuel derived from wood chips. Unlike previous fuels derived from wood, the new and still unnamed fuel can be blended with biodiesel and petroleum diesel to power conventional engines.

“The exciting thing about our method is that it is very easy to do,” said Tom Adams, director of the UGA Faculty of Engineering outreach service. “We expect to reduce the price of producing fuels from biomass dramatically with this technique.”

Adams, whose findings are detailed in the early online edition of the American Chemical Society journal Energy and Fuels, explained that scientists have long been able to derive oils from wood, but they had been unable to process it effectively or inexpensively so that it can be used in conventional engines. The researchers have developed a new chemical process, which they are working to patent, that inexpensively treats the oil so that it can be used in unmodified diesel engines or blended with biodiesel and petroleum diesel.

Here’s how the process works: Wood chips and pellets – roughly a quarter inch in diameter and six-tenths of an inch long – are heated in the absence of oxygen at a high temperature, a process known as pyrolysis. Up to a third of the dry weight of the wood becomes charcoal, while the rest becomes a gas. Most of this gas is condensed into a liquid bio-oil and chemically treated. When the process is complete, about 34 percent of the bio-oil (or 15 to 17 percent of the dry weight of the wood) can be used to power engines. The researchers are currently working to improve the process to derive even more oil from the wood.
Source

Many scientists have opposed biofuels as being inefficient and potentially harmful to the public health. The facts of transportation and energy/heating suggest that petroleum based fuels will trend progressively higher over time, as long as there is no significant recession or depression in the world economy. Given these rising costs, one would expect the smart money to invest in ways to produce useful fuels less expensive than future fossil fuels will be.


Many science bloggers have suggested that biofuels are a dead-end for the future. They say that the costs of producing the fuel are as great as the value of the fuel itself. They suggest that there is not enough land to grow both biofuels and food crops.

These are interesting claims, but they are unlikely to hold up in the face of the economic importance of viable alternatives to fossil fuels that can be used with existing combustion equipment, and such equipment as is likely to be introduced in the near term.

Food crops can be grown economically using aeroponic techniques, in the driest deserts, in outer space, or on sea-floating arcologies. Human ingenuity in the growing of both food crops and biofuel crops has just barely been tapped. The importance of liquid fuels in the trillion dollar infrastructures suggest that liquid biofuels will be very important quite soon, and for at least several decades.

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Thursday, May 10, 2007

Peak Oil: Meet Saskatchewan Oil Sands

Alberta does not have all the oil sands in Canada. Saskatchewan comes in for her fair share.
Industry and Resources Minister Eric Cline is hoping new regulations that came into effect Monday will encourage more exploration of Saskatchewan's oilsands and oil shale resources.

"If we had more companies operating up there ... then that would dramatically alter the situation,'' Cline said Monday.

The new regulations have been developed after consultation with the industry and other jurisdictions, and are an update of regulations approved over 40 years ago.

....Oilsands were identified in the province in the 1970s in an area north of the Primrose Lake Air Weapons Range, but there has been limited interest until the last few years.

Exploration for oil shales in the Hudson Bay area of the province was conducted 40 years ago, and the area has seen renewed exploration by industry recently.

Meanwhile, the first company to explore and develop oilsands resources in northwestern Saskatchewan in 40 years is stepping up development of its Axe Lake discovery, near La Loche.
Source

Meanwhile, several giant oil sands development projects are getting started in Alberta.
This summer, as many as 7,000 construction workers will be on the site of Canadian Natural Resources Ltd.'s Horizon project, which features an oil sands mine and upgrader north of Fort McMurray. The expansion of Royal Dutch Shell PLC's Athabasca mine and its Scotford upgrader near Edmonton employ about 2,000 workers right now, with a peak of more than 6,000 next year.

An upgrader is a sprawling industrial facility where bitumen, a mixture of sand and oil, is put through searing processes where the sand is stripped away from the oil and the low-grade crude is upgraded into synthetic oil. Total plans to use a method that's called delayed coking, a widely employed and proven process.


Skilled construction workers such as welders, ironworkers, electricians, pipefitters, millwrights, and other skilled workers will be getting paid a lot of money in various oil sands, shale oil, and coal projects over the next two or three decades. After 20 to 30 years, I suspect the transportation industry will be using more biofuels and electrical energy than fossil fuels.

If you know a poverty stricken English or History major working for minimum wage and struggling to make payments, you might tip them off--tell them to learn a useful trade!

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Saturday, May 05, 2007

Ultracapacitors Compared with Storage Batteries


Ultracapacitors, storage batteries, and fuel cells each have strengths and weaknesses, in terms of supplying energy to an electric vehicle. Fuel cells can store a large amount of energy, in the form of fuel, but cannot provide the huge surges of power needed for rapid acceleration. Storage batteries can store an intermediate amount of energy, and can provide a moderate surge of power. Ultracapacitors store small amounts of energy but provide very large surges of power.

Combining the strengths of all three storage media will almost achieve the strengths of the internal combustion engine, but with a cleaner, more efficient use of energy. In the future, the distinctions between fuel cells, storage batteries, and ultracapacitors are likely to fade.

This Google Tech Talk presents some details of the approach to ultracapacitors by a Ukrainian/US startup, APCT. It provides a useful overview of the need for ultracapacitors, and the potential market.

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Pluggable Hybrid Video


Pluggable hybrids can be plugged in to the electrical grid, or other source of electricity. Electrical energy is currently less expensive per unit of energy, than petroleum based fuels. As time goes by, electricity should become more available and de-centralised, while petroleum will probably trend more expensive, over time.

Battery technology is lagging far behind the needs of modern travelers. Electric vehicles are severely limited in their travel range, due to the miniscule amount of energy storage that even very large and heavy battery banks can contain.

Current battery storage is a joke. Fuel cell technology, on the other hand, promises to advance more quickly in the near to intermediate term than battery technology. Fuel cells that run on biofuels would run fairly clean.

Pluggable automobiles that combine fuel cells running on biofuel, with state of the art electrical storage batteries, may be the best near to middle term approach to personal transportation. Ultracapacitors may by some miracle become good enough in energy density to replace storage batteries, but that would require significant advances in nanotechnology. By that time, integrated molecular manufacturing will probably probably blur the distinctions between the ultracapacitor and the storage batter. Fuel cells will also become far better, and closer to the high performance in both energy and power densities that typify the internal combustion engine--while maintaining a cleaner and more efficient operation.

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Saturday, April 28, 2007

Cornwall Wave Energy Hub


A £21m wave energy farm in Cornwall has been agreed to.
More than £21m of funding has just been agreed for Wave Hub, a giant electrical terminal on the seabed 10 miles off the coast of Hayle, near St Ives, through which wave energy devices can transmit the energy they generate along a high-voltage undersea cable back to the National Grid on shore.

When it is operating next year it is likely to support the largest array of wave energy machines in the world, and mark an enormous step forward in the development of wave power, which has long been the Cinderella in the family of renewable energy technologies - far less advanced than wind and solar power.

....Wave Hub will allow developers of wave energy devices to test new wave energy technology. Groups of devices will be connected to the terminal and float on or just below the surface of the sea to assess how well they work and how much power they generate before going into full commercial production.

The terminal will be connected to the National Grid by a 15.5 mile cable linked to a new electricity substation at Hayle. It could generate 20 megawatts of electricity, enough power for 7,500 homes or three per cent of Cornwall's domestic electricity needs.
Source

Although surfers fear the Wave Hub will detract from their surfing excitement, only time will tell whether the surfers' waves lose energy and height as a result of this experimental project.

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Wednesday, April 25, 2007

Access to Energy Archives

Access to Energy is a decidedly "in-your-face" optimistic pro-technology energy news and views website/newsletter.

The first 25 years of Access to Energy are available online in archive form. These articles, essays, editorials, and news reports are presented from a point of view that has been extincted from university campuses, out of political correctness. Fortunately, the internet is a wild-west style wide open information space where you can still find most points of view.

If the monkeys who run universities ever get control of the internet, you can expect a "Ministry of Information" style overseeing of a once-free information space. For an idea of what such a MOI would be like, read George Orwell's 1984.

If your mind is still open after reading this far, congratulations. There may be hope for you yet. In that case, check out the archives to ATE.

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Monday, April 23, 2007

Improved Use of Tidal Energy

The tide rises and falls twice a day, every day, as regular as clockwork. Why not tap into the tidal river to produce renewable energy?
Thanks to lessons learned by wind turbine designers, tidal power is already economically competitive, producing electricity at prices similar to wind power, according to feasibility studies by the Electric Power Research Institute, an industry R&D consortium. And it offers a big advantage over wind and other renewables: a precisely predictable source of energy. As a result, developers in the United States have laid claim to the best sites up and down the Atlantic and Pacific coasts. In the past four years the Federal Energy Regulatory Commission in Washington, DC, has issued preliminary permits for tidal installations at 25 sites, and it is considering another 31 applications.

.... "The whole point of doing kinetic hydro is to have a very small environmental footprint," says Dean Corren, Verdant's director of technology development, who designed the tidal turbines in the early 1980s while conducting energy research at New York University.

Corren's team installed its first two turbines in the East River in December. One has been delivering a maximum of 35 kilowatts of power to New York City, swiveling to generate power as the river swells with the high tides and empties with the low. The other turbine delivers performance data that Corren says will be crucial to refining the blades and gearbox, generator, and control system to optimize power generation.

This month Verdant added four more 35-kilowatt turbines. Corren says Verdant is now working on a next-generation design that will be cheaper to mass-produce, in anticipation of installing a farm of at least 100 turbines at the East River site.
Source

Although the absolute quantity of electric power available from the East River may not compare with a large coal or nuclear power plant, the potential is not insignificant. New nuclear power plants will be needed, but adding incremental sources such as wind, tidal, and wave power will help round out the symphony of power sources.

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Friday, April 20, 2007

Energy from the Sea


The sea stores massive amounts of energy from both the sun and the wind. The Energy Blog points to a recent news story on marine energy.
After sputtering along for nearly a decade, marine power appears poised to join the alternative energy juggernaut, though the technologies are still in the early stages and have no guarantee of success. Developers are using an array of contraptions — from spinning turbines to bobbing buoys and undulating, snakelike cylinders — to convert ocean or river movements into electricity.

The world's first commercial wave farm is scheduled to launch this summer off Portugal's coast. The first pilot tidal generator in the USA revved up in New York City's East River last December. And the USA's first utility-scale wave project, off Oregon beaches, won preliminary federal approval this year. All told, the Federal Energy Regulatory Commission has cleared 21 preliminary permits, and about 35 are pending for wave and tidal projects, largely off the West Coast and shores of Florida and New England.

Widespread use of marine energy is about a decade away, says Roger Bedard, ocean energy leader for the Electric Power Research Institute. In 50 years or so, he says, 20% of offshore wave energy could be tapped practically. That, combined with tidal energy, could constitute 10% of all U.S. power sources.


I am particularly interested in any energy technologies that would facilitate the success of seascapes or undersea habitats.

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Friday, April 13, 2007

More on Nuclear Power Resurgence

Brian Wang at Advanced Nanotechnology Blog, has a recent post up on the wildly accelerated pace of new nuclear plants to be built in Russia and China.
The United States has not had to rely significantly on nuclear power because energy from the abundant U.S. domestic coal supply (reserves are estimated at 520,494 million tons) is much cheaper than nuclear energy, which requires significant initial capital investment. However, from an economic perspective, energy suppliers are taking a second look at nuclear energy, since expected GHG regulations and requirements for coal plants to use cleaner technology will make coal-powered energy more expensive.

Other factors will add to the growing support for nuclear energy development in the United States. First, Americans too young to have seen the effects of nuclear plant disasters are much more open to nuclear development than the previous generation, particularly as younger citizens grow more concerned about climate change. Second, the notion of energy independence and security is popular with politicians and the public who view nuclear development as a way to make the country less dependent on petroleum from politically unstable regions. Further, environmental groups are beginning to come around to nuclear energy because of its potential role in slowing climate change; some environmentalists have come out in support of nuclear energy as a viable option (though most still prefer alternative energy and energy efficiency measures). A convincing argument for a repository like Yucca Mountain or a successful implementation of GNEP could certainly add to the growing support for nuclear energy development in the United States.

Merely replacing the existing U.S. fleet of nuclear reactors could be worth as much money as all of the planned expansions in France, Russia and China combined. Such a development would not only revolutionize the U.S. domestic nuclear industry but would also lead to expanded nuclear technology research and development worldwide. Also, U.S. acceptance of nuclear energy likely will lead to a quick increase in nuclear operations in other industrialized countries that have been hesitant to pursue further nuclear activity because of safety concerns.
Source

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Sunday, April 08, 2007

Peak Uranium--As Overblown as Peak Oil?

Recent concerns over CAGW have led many planners--and even environmentalists--to suggest that increased use of nuclear power may reduce CO2 dumping into the atmosphere. But many anti-nuclear activists are claiming that there is a shortage of uranium which prevents any large scale nuclear energy alternatives. What is the reality?

Uranium is a common mineral--as plentiful as tin.
Uranium prices reached an all-time low in 2001, costing US$7/lb, but have since rebounded strongly. As of January 2007, uranium sells at US$72/lb and the price is rising fast. This is the highest price (adjusted for inflation et cetera) in 25 years [2]. The higher price has spurred new prospecting and reopening of old mines. Cameco and Rio Tinto Group are the top two producing companies (with 20% of the production each), followed by Areva (12%), BHP Billiton (9%) and Kazatomprom (9%).
Source
Deposits of uranium lie primarily in Canada, Australia, the US, South Africa, and countries of the former USSR. There is tremendous flexibility in the production of uranium, depending on pricing and political/regulatory conditions. Currently Canada and Australia are the world's major producers, but producers in the third world are gearing up for higher production with Chinese and Russian backing.


Realistically, "Peak Uranium", like "Peak Oil", is an almost meaningless term. Better terminology would refer to pricing of these commodities--which reflects supply, demand, and political/regulatory factors. Although some people have seized upon this report that suggests an impending bottleneck of uranium supplies for the US, more informed individuals with a broader perspective of commodities markets will understand that markets find a way--even when ivory tower academics can only see government action as a solution.

The important thing is to assure that government regulatory agencies do not make it impossible for the market to function.

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Saturday, March 31, 2007

Gas Turbines--An Important Part of the Power System

Gas turbines are important machines in the production of energy for electricity and transportation. When used as part of a cogeneration system, they contribute to high efficiencies for scalable power plant systems.


A short but interesting animation of gas turbine operation for electricity generation. It depicts the operation of the compressor phase of the gas turbine.

This is a video portraying the reliability testing procedures for a new GE gas turbine for jet aircraft.

Here is more information on some specific turbine gensets.

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Thursday, March 15, 2007

Solar Tower Video--Featuring the Pilot Project in Spain


This video goes inside the solar tower pilot project that has been built in Spain. Although not as large as the tower in the previous video, this one actually exists, and generates electric power. A fascinating glimpse into what is probably one of the best large scale ways of generating electricity from the sun.

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Monday, March 12, 2007

Ocean Thermal Energy Conversion--OTEC


A very nice video illustrating Earth's thermohaline circulation, and the OTEC method of extracting electrical energy from the temperature differential of the tropical ocean. Definitely worth four minutes of your time.

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Large Scale Renewables--Fantastic Video!



While there is no doubt that human civilisation will require more nuclear plants in order to transition away from fossil fuel dependency, large scale renewables offer more sustainable energy paths for the long run.

The solar tower--particularly one of the designs that generates power both day and night--is one of the most promising ideas for large scale renewable power. Personally, I like the idea of combining the solar tower with an arcology tower dwelling--like the Ultima Tower.

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Sunday, February 25, 2007

Think of the Energy Needed to Run This World's Fair


Travel back in time, to the 1939 NY World's Fair. Empty your mind of 2007 ennui, and enter the child mind that is clamoring to be loosed. Futures past. Pay particular attention to the premonitions of nanotechnology and replicator technology.

Courtesy of Ephemeral Isle

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Sunday, February 11, 2007

The Coming Ice Age--Were the 1970's Doomsters Right After All?

Little by little, intelligent people of good conscience are breaking their silence on the absurd crusade of the climate inquisition. Scientists who work with the IPCC are finding their work perverted to the ends of politicians, and that is not science. Nigel Calder, former editor of New Scientist, is just the latest person of integrity to say "enough!"
When politicians and journalists declare that the science of global warming is settled, they show a regrettable ignorance about how science works. We were treated to another dose of it recently when the experts of the Intergovernmental Panel on Climate Change issued the Summary for Policymakers that puts the political spin on an unfinished scientific dossier on climate change due for publication in a few months’ time. They declared that most of the rise in temperatures since the mid-20th century is very likely due to man-made greenhouse gases.

....Twenty years ago, climate research became politicised in favour of one particular hypothesis, which redefined the subject as the study of the effect of greenhouse gases. As a result, the rebellious spirits essential for innovative and trustworthy science are greeted with impediments to their research careers. And while the media usually find mavericks at least entertaining, in this case they often imagine that anyone who doubts the hypothesis of man-made global warming must be in the pay of the oil companies. As a result, some key discoveries in climate research go almost unreported.

....Disdain for the sun goes with a failure by the self-appointed greenhouse experts to keep up with inconvenient discoveries about how the solar variations control the climate. The sun’s brightness may change too little to account for the big swings in the climate. But more than 10 years have passed since Henrik Svensmark in Copenhagen first pointed out a much more powerful mechanism.
More at Source.

Here is a call for sanity from a cooling (not warming!) New Zealand in the midst of the global warming stampede:
“Now, we are presented with an IPCC document that is a summary of a draft of an unfinished report not due for release until May, yet this summary is intended to guide policymakers. It is a document that ignores natural climate influences such as sun-related effects and cycles, and tries to pin the whole of the blame on human beings.

“I hope that people will take the time to read the measured and scientifically restrained comments of Dr Ross McKitrick and his co-writers, who sum up their findings with these words: ‘Consequently, there will remain an unavoidable element of uncertainty as to the extent that humans are contributing to future climate change, and indeed whether or not such change is a good or bad thing.’
Source.

And here is more from a foremost world expert in atmospheric science:
A GCM is a weather forecasting model in which the coefficients and parameterizations are tuned so as to obtain long-term results that have an air of realism. The model is then run for several tens of years. There are no penetrating studies of the way slight software mismatches might affect the average values of key output parameters fifty years from now. A forecasting model can make do with relatively crude parameterizations because the short-time evolution of the atmospheric circulation is primarily governed by its internal dynamics. Sloppy representations of boundary conditions, clouds, convection, evaporation and condensation do not mess weather forecasts up all that fast. But the long-term evolution of the general circulation is to a large extent determined by boundary conditions.

....I want to lobby for decency, modesty, honesty, integrity and balance in climate research. I hope and pray we lose our obsession with climate forecasting. Climate simulations are best seen as sensitivity experiments, not as tools for policy makers. I said it in 1990 and I am saying it now: the constraints imposed by the planetary ecosystem require continuous adjustment and permanent adaptation. Predictive skills are of secondary importance. We should stop our support for the preoccupation with greenhouse gases our politicians indulge in. Global energy policy is their business, not ours. We should not allow politicians to use fake doomsday projections as a cover-up for their real intentions. If IPCC does not come to its senses, I’ll be happy to let it stew in its own juices. There is plenty of other work to do.
Source.

Climate science has been hijacked by unscrupulous individuals both within and without the climatological community. The mad rush for power by these individuals will not be forgotten.

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Monday, February 05, 2007

Nuclear Power Plant Construction to Accelerate Internationally


This post links to information on the rapidly accelerating plans for new nuclear power construction worldwide. The TVA in the southern US has immediate plans to build two new plants, with longer range plans for more.

This link will take you to a table listing different countries with their current nuclear plants, those under construction, those planned, and those proposed.

  • Canada* 18 now, 2 under construction 1.54 GW, 2 planned 2 GW
  • China 10 now, 5 under construction 4.1 GW, 13 planned 13GW, 50 proposed, 36GW
  • India 16 now, 7 under construction 3.2GW, 4 planned 2.8GW, 15 proposed, 11.1GW
  • Japan 55 now, 2 under construction 23GW, 11 planned 15GW
  • South Korea (1,7) and Russia (3,8) have a lot under construction and planned


Nuclear energy is getting safer, and newer reactor designs are more efficient. Even newer designs promise the ability to productively burn all those tons of nuclear waste that would otherwise require thousands of years of secure storage. Things seem to be working out all around for nuclear power.

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Sunday, February 04, 2007

Energy from Garbage: Another Approach

Ordinary matter contains large amounts of energy. Even garbage contains energy that can be retrieved and made to do useful work.
Researchers tested the first tactical biorefinery prototype in November and found that it produced approximately 90 percent more energy than it consumed, said Jerry Warner, founder of Defense Life Sciences LLC, a private company working with Purdue researchers on the project. He said the results were better than expected.

The U.S. Army subsequently commissioned the biorefinery upon completion of a functional prototype, and the machine is being considered for future Army development.

The tactical biorefinery first separates organic food material from residual trash, such as paper, plastic, Styrofoam and cardboard. The food waste goes to a bioreactor where industrial yeast ferments it into ethanol, a "green" fuel. Residual materials go to a gasifier where they are heated under low-oxygen conditions and eventually become low-grade propane gas and methane. The gas and ethanol are then combusted in a modified diesel engine that powers a generator to produce electricity.
Source.

Other approaches to extracting energy from garbage involves high intensity plasmas which create very high temperatures. The higher the temperature the better, when it comes to turning garbage into useful matter and energy.

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Friday, January 26, 2007

Evidence Against Climate Alarmism Builds

Climatologists are being pressured by politically motivated alarmists to paint the climate as a "catastrophe." An appearance of objectivity would lack the fanatic zeal that many political crusaders demand of climate spokespersons.

The recent "Stern Report" is a good example of an alarmist approach to "catastrophe-making." The upcoming IPCC "political report for policymakers" is another fascinating window into the political drivers behind climate catastrophism.

The general public can be excused for being duped by such dissimulation. The quality of schools has sagged badly in recent decades, leaving much of the public susceptible to blatant propaganda. People who claim to be scientists, engineers, and "science journalists" (an oxymoron?) have no such excuse.

Time is not on the side of the alarmists, so they must push rapidly for drastic and draconian policies to be put in place, to face a catastrophe of their own creation. Once the policies and massive, costly new institutions and regulations are in place, it will be virtually impossible to get rid of them--even after better science refutes the alarmist's assumptions and projections.

Then it will be too late. So we must all bend over now, and let the propagandists in the media and politicized institutions of science and government do their worst. Hey! At least use some K-Y jelly, would you?

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Sunday, January 21, 2007

Basic Concepts of Energy--Physics Lecture


It may be useful to provide a Physics review of basic energy concepts. Eventually, we will be covering some fairly technical developments in energy production and storage. This review may help some to follow along when things start moving very quickly.

Wednesday, January 17, 2007

Termites to the Rescue--Secrets of Cellulosic Ethanol and Butanol

Metagenomics is the clever art of stealing DNA from one species to use for the benefit of another--namely, us. Presently, humans need a good way to convert cellulose--from plant waste and prolific grasses and woods--into sugars for fermentation to useful alcohols such as butanol and ethanol. Termites have been hosting bacteria that perform that conversion for millions of years. Perhaps we could learn something from termite guts?
Scientists are sequencing the genomes of entire microbial communities in the hope of uncovering new genes and organisms that can create fuel, mine metals, or clean up superfund sites. Known as metagenomics, the field relies on studying bits of DNA from a variety of organisms that live in the same place. Thanks to ever-improving sequencing methods, the number of metagenome projects is growing, giving scientists myriad new genes to explore.

...Converting cellulose in trees and grasses into the simple sugars that can be fermented into ethanol is a very energy-intensive process. "If we had better enzymatic machinery to do that, we might be better able to make sugars into ethanol," Bristow says. "Termites are the world's best bioconverters."

Researchers at the Joint Genome Institute, which sequenced some of the human genome and is now largely devoted to metagenomics, have just finished sequencing the microbial community living in the termite gut. They have already identified a number of novel cellulases--the enzymes that break down cellulose into sugar--and are now looking at the guts of other insects that digest wood, such as an anaerobic population that eats poplar chips. The end result will be "basically a giant parts list that synthetic biologists can put together to make an ideal energy-producing organism," says Hugenholtz.
Source.

So you see, metagenomics may help to break the chokehold of petroleum on the modern global economic infrastructure. And much, much, more.

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Monday, January 08, 2007

Crude Oil Too Thick? Zap It With Cold Electron Crackers!


Cold cracking uses beams of high-energy electrons to transform the thick parts of crude oil into oils, gasoline, and other petroleum products thin enough to pump through a pipeline. The question is whether a conservative, capital-intensive oil industry will buy the idea. To hear Brainerd tell it, refining could certainly use something like it. A lot of new oil fields have oil that’s too thick to pump, and that’s a shame, because there’s so much of the stuff. There are an estimated 2.5 trillion barrels of ultrathick oil locked up in the sands of Alberta, Canada, alone.
Source.

Cold cracking will have to be significantly better than traditional cracking practices to get the oil industry to adopt it. Accelerating electrons to suitable energies is not a process the chemical engineers in the industry have perfected or grown comfortable with.

For more information consult this literature review on cold cracking.

Friday, December 29, 2006

Dean Kamen's Advanced Stirling Engine and Slingshot Purifier

Yes, it is true. It is possible to provide clean water, and reliable electricity from dung, and urine. Can you think of many places that significant numbers of humans live where there is not ample supply of both?

Dean Kamen--successful college dropout, inventor extraordinaire--provides the means to make energy from dung or other bio-combustibles, and pure water from piss--or any impure water source. The ingenious devices that provide clean water and plentiful energy can be mass produced cheaply, and transported anywhere.

Wealthy inventor Dean Kamen does not hesitate to drink his own urine(!)--once it has passed through his patented "Slingshot" purification system. He does this in front of audiences to convince them that it is possible to do away with water-born illness around the globe. Would George Bush or Nancy Pelosi drink their own urine to help make the world a better place? Interesting question.

There should be no shortage of clean water, no one without electricity. The only real shortages existing are shortages of intelligence, ingenuity, cooperation, and tolerance for other religions and ideologies. Dean Kamen has provided the ingenuity for plentiful freshwater and energy--no matter how remote the village.

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Friday, December 22, 2006

High Altitude Wind Power

Flying Electric Generator (FEG) test flight video. There is enough energy in high-altitude winds to satisfy the world's demands. Wind-tunnel data suggests a cluster of 600 flying electric generators, or FEGs, could produce three times as much energy as the United States' most productive nuclear power plant. High-altitude winds could provide a potentially enormous renewable energy source, and flying windmills could put an end to dependence on fossil fuels. At 15,000 feet, winds are strong and constant. On the ground, wind is often unreliable - the biggest problem for ground-based wind turbines. For FEGs, the winds are much more persistent than on ground-based machines, more power and greater concentration. Having conducted tests with models, Sky WindPower wants to scale up experiments and produce a commercial-sized flying windmill with four rotors. The rotorcraft will go into the first layer of the atmosphere, called the troposphere. Sky WindPower estimates the craft will produce 200 kilowatts per hour of electricity in an area that at ground level would produce none because of a lack of wind.

Somewhere, the wind is blowing.

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Thursday, December 21, 2006

Inertial Electrostatic Confinement Fusion--Talk by Bussard at Google

This is an alternative approach to magnetic confinement and inertial confinement fusion. It has an interesting history and may end up being the fusion reactor of choice for outer space applications, due the small size of reactor.

This talk by Bussard is almost an hour and a half long, but if you are fascinated by unique approaches to fusion, this might hold your interest.

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