Environment-Clean-Generations

Environment-Clean-Generations
THE DEFINITIVE BLOG FOR EVERYTHING YOU NEED TO KNOW ABOUT THE ENVIRONMENT YOU LIVE IN, WITH REFERENCE TO LIFE, EARTH AND COSMIC SPACE SCIENCES, PRESENTED BY ENVIRONMENTAL ENGINEER DORU INDREI, ENVIRONMENTAL QUALITY AND ENERGY SPACIALIST
"Life is not about what we know, but what we don't know, craving the unthinkable makes it so amazing, that is worth dying for." Doru Indrei
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Showing posts with label nuclear fuel. Show all posts
Showing posts with label nuclear fuel. Show all posts

Algae Could Clean Up Nuclear Accident Sites



Algae can secrete biofuels and pump out biologic drugs, and now researchers think it could help clean up radioactive accidents like the one unfolding at Japan’s Fukushima nuclear facility. A Northwestern University researcher has identified a certain kind of common algae, known as Closterium moniliferum, that has a unique penchant for sequestering strontium into crystals, a trick that could help remove the dangerous radioactive isotope strontium-90 from the environment.

Strontium-90 is particularly hazardous because of its similarity to calcium. Because the two atoms share similar atomic properties, radioactive strontium can end up getting into the same places calcium can, like milk, bones, bone marrow, and blood. But strontium-90 isn’t a dominant element in reactor waste--there is usually billions of times more harmless calcium than strontium in a nuclear spill--so being able to separate the two is critical for quick and efficient cleanup.
That’s where C. moniliferum comes in. The algae’s real interest is barium, but because a strontium atom is somewhere between calcium and barium in properties and size the algae happily vacuums up and crystallizes the strontium as well.

But critically, it leaves calcium behind, meaning cleanup efforts don’t end up sequestering a bunch of harmless calcium along with the dangerous strontium. And because the algae are really hunting for barium, the researchers think it’s possible to seed a radioactive site with a small amount of barium to accelerate the entire process.

That saves both time and money, and in the midst of a massive disaster cleanup effort like the ongoing one in Japan, both time and money are extremely valuable.

For their part, the algae waste little of either--they are easy to culture and begin to precipitate crystals of strontium within a half hour of contact. Strafe a stricken nuclear site with the tiny organisms, and you could have them hunting and sequestering strontium in a matter of minutes.


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Next Nuclear Generation


Nuclear power is the most efficient emissions-free energy available. But can it be made safe? Two new reactor designs do just that. Safety Plan The Generation III+ reactors at the Vogtle facility in Georgia will feature a passive safety system to safeguard the plant in the absence of power.

          In the aftermath of the Fukushima disaster in March, the appetite for new nuclear power plants slipped to post-Chernobyl lows. Regulators from Italy to Switzerland to Texas moved to stop pending nuclear-power projects, and the U.S. Nuclear Regulatory Commission (NRC) began to reevaluate the safety of all domestic plants. Yet nuclear power still provides 20 percent of America’s total electric power and 70 percent of its emissions-free energy, in large part because no alternative energy source can match its efficiency.

          One nuclear plant with a footprint of one square mile provides the energy equivalent of 20 square miles of solar panels, 1,200 windmills or the entire Hoover Dam. If the country wants to significantly reduce its dependence on carbon-based energy, it will need to build more nuclear power plants. The question is how to do so safely.

The U.S. has 104 nuclear reactors operating at 65 sites in 31 states, all of them approved before 1980.
          In the 30 years since regulators last approved the construction of a new nuclear plant in the U.S., engineers have improved reactor safety considerably. (You can see some of the older, not-so-safe ones in this sweet gallery.) The newest designs, called Generation III+, are just beginning to come online. (Generation I plants were early prototypes; Generation IIs were built from the 1960s to the 1990s and include the facility at Fukushima; and Generation IIIs began operating in the late 1990s, though primarily in Japan, France and Russia.) 

           Unlike their predecessors, most Generation III+ reactors have layers of passive safety elements designed to stave off a meltdown, even in the event of power loss. Construction of the first Generation III+ reactors is well under way in Europe. China is also in the midst of building at least 30 new plants. In the U.S., the Southern Company recently broke ground on the nation’s first Generation III+ reactors at the Vogtle nuclear plant near Augusta, Georgia. The first of two reactors is due to come online in 2016.

            
           Like many of the 20 or so pending Generation III+ facilities in the U.S., the Vogtle plant will house Westinghouse AP1000 reactors. A light-water reactor, the AP1000 prompts uranium-235 into a chain reaction that throws off high-energy neutrons. The particles heat water into steam, which then turns a turbine that generates electricity.

          The greatest danger in a nuclear plant is a meltdown, in which solid reactor fuel overheats, melts, and ruptures its containment shell, releasing radioactive material. (Want more information? Check out our explainer on how nuclear reactors work--and how they fail.) Like most reactors, the AP1000 is cooled with electrically powered water pumps and fans, but it also has a passive safety system, which employs natural forces such as gravity, condensation and evaporation to cool a reactor during a power outage.

          A central feature of this system is an 800,000-gallon water tank positioned directly above the containment shell. The reservoir’s valves rely on electrical power to remain closed. When power is lost, the valves open and the water flows down toward the containment shell. Vents passively draw air from outside and direct it over the structure, furthering the evaporative cooling.

          Depending on the type of emergency, an additional reservoir within the containment shell can be manually released to flood the reactor. As water boils off, it rises and condenses at the top of the containment shell and streams back down to cool the reactor once more. Unlike today’s plants, most of which have enough backup power onsite to last just four to eight hours after grid power is lost, the AP1000 can safely operate for at least three days without power or human intervention.

          Even with their significant safety improvements, Generation III+ plants can, theoretically, melt down. Some people within the nuclear industry are calling for the implementation of still newer reactor designs, collectively called Generation IV. The thorium-powered molten-salt reactor (MSR) is one such design. In an MSR, liquid thorium would replace the solid uranium fuel used in today’s plants, a change that would make meltdowns all but impossible.



              MSRs were developed at Tennessee’s Oak Ridge National Laboratory in the early 1960s and ran for a total of 22,000 hours between 1965 and 1969. “These weren’t theoretical reactors or thought experiments,” says engineer John Kutsch, who heads the nonprofit Thorium Energy Alliance. “[Engineers] really built them, and they really ran.” Of the handful of Generation IV reactor designs circulating today, only the MSR has been proven outside computer models. “It was not a full system, but it showed you could successfully design and operate a molten-salt reactor,” says Oak Ridge physicist Jess Gehin, a senior program manager in the lab’s Nuclear Technology Programs office.

One pound of thorium produces as much power as 300 pounds of uranium--or 3.5 million pounds of coal.
            The MSR design has two primary safety advantages. Its liquid fuel remains at much lower pressures than the solid fuel in light-water plants. This greatly decreases the likelihood of an accident, such as the hydrogen explosions that occurred at Fukushima. Further, in the event of a power outage, a frozen salt plug within the reactor melts and the liquid fuel passively drains into tanks where it solidifes, stopping the fission reaction. “The molten-salt reactor is walk-away safe,” Kutsch says. “If you just abandoned it, it had no power, and the end of the world came--a comet hit Earth--it would cool down and solidify by itself.”

           Although an MSR could also run on uranium or plutonium, using the less-radioactive element thorium, with a little plutonium or uranium as a catalyst, has both economic and safety advantages. Thorium is four times as abundant as uranium and is easier to mine, in part because of its lower radioactivity. 

          The domestic supply could serve the U.S.’s electricity needs for centuries. Thorium is also exponentially more efficient than uranium. “In a traditional reactor, you’re burning up only a half a percent to maybe 3 percent of the uranium,” Kutsch says. “In a molten-salt reactor, you’re burning 99 percent of the thorium.” The result: One pound of thorium yields as much power as 300 pounds of uranium--or 3.5 million pounds of coal.

          Because of this efficiency, a thorium MSR would produce far less waste than today’s plants. Uranium-based waste will remain hazardous for tens of thousands of years. With thorium, it’s more like a few hundred. As well, raw thorium is not fissile in and of itself, so it is not easily weaponized. “It can’t be used as a bomb,” Kutsch says. “You could have 1,000 pounds in your basement, and nothing would happen.” 

          Without the need for large cooling towers, MSRs can be much smaller than typical light-water plants, both physically and in power capacity. Today’s average nuclear power plant generates about 1,000 megawatts. A thorium-fueled MSR might generate as little as 50 megawatts. Smaller, more numerous plants could save on transmission loss (which can be up to 30 percent on the present grid).

One nuclear plant provides the energy equivalent of 1,200 windmills or 20 square miles of solar panels.
           The U.S. Army is interested in using MSRs to power individual bases, Kutsch says, and Google, which relies on steady power to keep its servers running, held a conference on thorium reactors last year. “The company would love to have a 70- or 80-megawatt reactor sitting next door to a data center,” Kutsch says. 

             Even with military and corporate support, the transition to a new type of nuclear power generation is likely to be slow, at least in the U.S. Light-water reactors are already established, and no regulations exist to govern other reactor designs. Outside the U.S., the transition could come more quickly. In January the Chinese government launched a thorium reactor program. “The Chinese Academy of Sciences has approved development of an MSR with relatively near-term deployment--maybe 10 years,” says Gehin, who thinks the Chinese decision may increase work on the technology worldwide. Even after Fukushima, “there’s still interest in advanced nuclear,” he says. “I don’t see that changing.”


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Fukushima - 770,000 terabecquerels of radiation got into the atmosphere



The Nuclear and Industrial Safety Agency (NISA) says it believes 770,000 terabecquerels of radiation escaped into the atmosphere following the initial nuclear crisis. The revision, almost three months after the quake, is likely to fuel criticism of the initially slow and vague flow of information from the government.

             Japan has more than doubled its initial estimate of radiation released from the crippled Fukushima nuclear plant in the week after the March 11 tsunami, ahead of the launch of an official probe Tuesday.

            The nation's watchdog, the Nuclear and Industrial Safety Agency (NISA), now says it believes 770,000 terabecquerels escaped into the atmosphere in the first week -- compared to its earlier estimate of 370,000 terabecquerels.

            The findings were released on the eve of the first meeting Tuesday of an independent 10-member academic and expert panel that will look into the causes of the world's worst nuclear accident since Chernobyl a quarter-century ago.

            The group's leader, a Tokyo University researcher on human error, Yotaro Hatamura, said at the meeting that "nuclear power has higher energy density and is dangerous. It was a mistake to consider it safe".

            NISA's new figure is closer to that of Japan's independent Nuclear Safety Commission which had initially estimated a release at 630,000 terabecquerels in the first month.

            The revision, almost three months after the quake, is likely to fuel criticism of the initially slow and vague flow of information from the government, and plant operator Tokyo Electric Power Company (TEPCO).

            Japanese experts have stressed that most of the radiation released in the first days after the quake, amid a series of hydrogen explosions at the plant, was blown across the Pacific Ocean, not over inhabited areas.

            Prime Minister Naoto Kan's special advisor on the nuclear crisis, Goshi Hosono, said Monday that the latest findings were unlikely to affect the TEPCO roadmap to bring all reactors to stable "cold shutdown" by October-January.

           NISA also said in its review that it believes much of the nuclear fuel inside the three reactors melted down faster than previously believed after the tectonic disaster knocked out the plant's cooling systems.
The agency said melted fuel in unit one dropped to the bottom of the pressure vessel and damaged it some five hours after the quake hit the plant at 2:46 pm on March 11, followed by a 14-metre (46 foot) tsunami.

         The agency said the same happened in unit two at about 10:50 p.m. on March 14, and that number three suffered damage at 10:10 p.m. on March 14.
         TEPCO has said it believes the molten fuel is now being cooled by water at the bottom of the number one, two and three reactor pressure vessels, citing the relatively low outside temperatures of the containers.

          Months of hosing operations have left over 100,000 tons of highly radioactive water in buildings, basements and tunnels at the plant, and TEPCO is struggling to remove the runoff so it can resume crucial repair work.
         Contaminated water has spilled or been released several times into the Pacific Ocean, and environmental group Greenpeace has warned that it has found unsafe radiation levels in marine species as far as 50 kilometers (31 miles) offshore.

        TEPCO has been testing water decontamination equipment, some provided by US and French companies, to remove radioactive substances, oil and seasalt from the runoff water so it can be reused as a reactor coolant from about mid-June.
        With the advent of the summer rainy season in the region, they have also started to ship to the plant 370 truck-sized water tanks with a total capacity of more than 40,000 tons to store excess contaminated water.

 http://news.discovery.com/videos/tech-measuring-nuclear-disasters.html


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