Saturday, February 29, 2020

FUSION REACTORS - for our electricity?

-  2639  -  FUSION  REACTORS  -  for our electricity?  See Review 2638 about the history of fusion reactors.  When I was in high school I learned in physics class that fusion was going to replace fission and our electricity would no longer depend o fossil fuels.  Electricity would essentially be free.  Well 60 years later and we are still saying that  “recent developments” in the world of fusion power are giving scientists newfound optimism for the elusive ‘holy grail’ of energy technologies. 
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---------------------   2639 -  FUSION  REACTORS  -  for our electricity?
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-  The first of recent developments is a discovery by the Department of Energy’s Princeton Plasma Physics Laboratory  which uses radio frequency technology to greatly reduce so-called ‘plasma disruption’, the leading challenge to achieving a sustained, net energy gain fusion reaction. This is a key element to long awaited making fusion a feasible source of electricity.
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-  The second development is a report by a panel of distinguished scientists from the National Academies of Sciences, Engineering and Medicine to the DOE which concluded that a $200 million annual investment in the technology for the next several decades could lead to a commercially viable reactor before 2050. This timeline includes demonstrating energy-gain fusion, a reaction which produces more energy than it takes in, by the mid-2020s and a concept reactor by the 2030s.  The future is not always what it is made out to be.
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-  Nuclear fusion is a technology that is easy to get excited about. The power emitted from sustained thermonuclear fusion is safe, carbon-free, and abundant. The primary fuel, hydrogen isotopes, can be found in regular sea water, and just a few grams are enough to kick-start a reaction.
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-  General Atomics, a manufacturer of the powerful magnets necessary for fusion plasma containment, estimates that a working reactor would only need 11 pounds of hydrogen to generate the energy equivalent of 18,750 tons of coal, 56,000 barrels of oil or 755 acres of solar panels, an amazing feat of science and technology, if it ever happens?
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-  The implications are near limitless. Aside from the obvious benefits for combating climate change, ending energy scarcity, and growing the global economy, fusion could also have applications for space travel and U.S. national security (provided we develop the technology first).
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-  It’s no wonder, then, that a number of private entities are aggressively pursuing the technology. Lockheed Martin  announced last year its plan to develop a prototype compact fusion reactor within the next decade. If it works, the truck-sized device would be capable of providing enough electricity to meet the demand of a small city of 100,000 people.
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-   Lockheed is joined by TAE Technologies, The Massachusetts Institute of Technology Plasma Fusion Center , and Canadian-backed General Fusion Inc., in a group of contenders promising to bring fusion commercialization before 2030.  Even Amazon’s  Jeff Bezos and Microsoft’s Bill Gates have thrown their hats into the fusion power ring.
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-  This tricky technology has eluded scientists for more than 60 years.
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-  The Fusion process is the same one that powers our Sun.  A star as one gigantic fusion reactor:  hydrogen atoms forced together under immense heat and pressure break their atomic bonds, fusing into a new heavier element, helium. Some mass is lost in the process, however, and great amounts of energy are released as a result.
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-  This is what Einstein's famous formula E = m * c² describes: the tiny bit of lost mass (m), multiplied by the square of the speed of light (c²), results in a very large figure (E), which is the amount of energy created by a fusion reaction.
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-  The catch is that these reactions generate very hot and very unstable globs of plasma in excess of 500 million degrees Fahrenheit.   This requires tremendous amounts of energy to maintain. To date, the longest recorded sustained plasma operation is just over one minute long.
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-  Scientists believe that magnetic fields offer the best method for containing the super-heated plasma, a key principle of the Soviet-designed Tokamak reactors, which most of today’s leading prototypes are modeled after.
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-   The International Thermonuclear Experimental Reactor  project under construction in Cadarache, France is the most celebrated Tokamak-style reactor in existence. The multi-billion dollar, 35-nation effort including the United States, Russia, China, India, the European Union, Japan and South Korea and is now on pace for a 2050 commercial debut after a number of cost overruns and delays.
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-  The United States has already contributed $1.13 billion since 2016, roughly 9 percent of the total cost. For the international project to meet its current timeline, the National Academy of scientists estimates that the U.S. will need to contribute at least another $2.2 billion over the next decade.
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-  However,  post-World War Two tech developments from hydraulic fraction to Apple smart phones to TESLA  electric cars suggest that it is the private sector, profit-driven companies and entrepreneurs, that are most effective in the commercialization of basic science.
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-  While fusion technology certainly seems to be gaining momentum in academic, policymaking, and venture capital circles, the promise of reliable fusion power has always been ‘just a decade or two away.’
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-  If history is any guide, we should not hold our breath just yet.

-  February 29, 2020                                                                          2639                                                                                 
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