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Plaintext
201 lines
17 KiB
Plaintext
Episode: 4553
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Title: Nuclear Reactor Technology - Ep 4 Less Common Reactor Types
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Source: https://hub.hackerpublicradio.org/ccdn.php?filename=/eps/hpr4553/hpr4553.mp3
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Transcribed: 2026-07-31 16:13:48 (official HPR transcript)
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---
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This is Hacker Public Radio Episode 4553, for 2026-01-14
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Today's show is entitled, "Nuclear Reactor Technology - Ep 4 Less Common Reactor Types"
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The host is Whiskeyjack and the duration is 00:17:34
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The flag is Clean, and the license is CC-BY-SA
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The summary is "Some of the less common historical reactor types."
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This episode is the fourth in an eight-part series on nuclear reactor technology.
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Less common reactor types. In this episode we discussed some of the less common historical
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reactor types. These are a mixture of less common commercial types and some experimental
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or research reactors. I will cover advanced or future designs in another episode.
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Miner successes. First I'll start with some reactors that had minor successes, but for
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one reason or other, didn't find widespread sales.
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Magnocks. This is a British design, but saw very limited use outside of the UK.
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The name comes from the type of fuel used. This used a non-oxidizing, magnesium aluminum
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sheath around the fuel. The first nuclear reactors anywhere to produce power for the grid
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on a large scale were the Magnocks reactors at Calderhal with 460 megawatt units starting
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in 1956. Other claimants to this title were experimental reactors that produced anywhere
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between less than a kilowatt to no more than 5 or 6 megawatt.
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It is characterized by the following features. The moderator is graphite. The coolant
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is carbon dioxide. It used natural uranium. The moderator, fuel and coolant are contained
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in a steel and concrete pressure vessel. The carbon dioxide coolant is used to create steam
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and a steam generator, refueling is done online. This design was succeeded by the AGR.
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The Magnocks reactors are currently all shut down or dismantled due to age.
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AGR advanced gas cooled reactor. This is a British design, but not used outside of the UK.
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These were based on the earlier Magnocks reactors. It is characterized by the following features.
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The moderator is graphite. The coolant is carbon dioxide. It uses uranium and rich to 2.5
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to 3.5%. The older Magnocks reactors use natural uranium. The moderator, fuel and coolant
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are contained in a steel and concrete pressure vessel.
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The carbon dioxide coolant is used to create steam and a steam generator, refueling is
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done online. The operating temperatures are much higher than for other reactors mentioned
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so far. This allows for higher thermal efficiency and so allows more power to be generated
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from a smaller reactor. This design is no longer being developed. The AGR reactors are being
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faced out as a reach end of life. The design was successful from a technical perspective,
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but did not sell well outside of the UK.
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LWGR, light water graphite moderated reactor, also known as RBMK. This was originally
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a Soviet design and never built outside of the Soviet Union. It was unusual in how it combined
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features and ways not seen in other reactors. It is characterized by the following features.
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The moderator is graphite. The coolant is light water. Fuel is contained in vertical
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tubes running through the graphite moderator. Steam is boiled directly in the fuel channels
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and there is no separate steam generator. It uses slightly enriched uranium, refueling
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is conducted online with the reactor running at full power by depressurizing one tube at
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a time. There is no containment building. The reactors at Chernobyl were of this design.
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These are not related to the more common VVER designs which originated in the Soviet Union
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at about the same time. The VVER reactors are fairly conventional PWR designs.
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Historical oddities are dead ends. Next, I'll cover some historical oddities or dead
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ends. Some of these designs may make a comeback, however, so don't write them off completely.
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In many cases, there was nothing inherently wrong with the reactor design. The design
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owners in many cases simply decided that there was a better market for some other design
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they had. Organically cooled reactors. Organically cooled reactors use an organic oil compound
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as either a coolant or both as a coolant and moderator instead of water. The reason
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for using an organic oil was to allow higher operating temperatures without high pressures.
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This allows for the reactor itself to be unpressurized and thus simpler and cheaper while
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the high pressure parts are combined to the steam generator in steam circuit. Higher operating
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temperatures allow for higher thermal efficiency in the steam cycle, allowing more power
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to be produced from a given size of reactor. Organically cooled and moderated. This uses
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the organic fluid as both coolant and moderator. The main example of this is the Pickwood
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Nuclear Power Plant built as an experiment in the U.S. in the early 1960s. This generated
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43.5 megawatts. The basic design was similar to the American PWR designs in that the fuel,
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moderator and coolant were together in one tank and steam was generated separately. However,
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the reactor vessel was an impressurized due to the high boiling point of the organic coolant.
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The coolant was a standard commercially available heat transfer fluid used at industry. The
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design suffered from the following of surfaces due to the breakdown of the organic fluid
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and the build-up of sludge in the reactor vessel. It was shut down after less than three years
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of operation. Organically cooled and heavy water moderated. This uses an organic coolant but the
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moderator is heavy water and is separate from the coolant. The main example of this was the
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WR-1 reactor in Canada. This was a research reactor and was not intended to produce electric power.
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Nonetheless, it was large enough to produce 60 megawatts of heat. The design was similar to PHWR
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or also known as Kando, reactors, and that it consisted of a number of tubes,
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holding the fuel and coolant, which ran through a large, unpressurized tank of heavy water.
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Unlike normal Kando designs, the tubes ran vertically rather than horizontally.
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These tubes were unpressurized and the coolant operated at relatively high temperature.
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Since this was a research reactor, there were also tubes which were used to hold experiments
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which were to be irradiated. Fueling was online. Fuel was uranium carbide rather than the
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normal uranium oxide. This was cheaper and easier to make than oxide fuel and was chemically
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compatible with the organic coolant. Because the oil was non-corroso, the metals used to build
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the reactor could be less complex and expensive than once it had to withstand both radiation
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and high temperature water. The higher operating temperatures would have allowed for higher
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efficiency if a steam cycle was added. It ran for two decades from the mid-1960s to the mid-1980s,
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when it was shut down as Canada's national nuclear lab decided to start to consolidate operations
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onto fewer sites. This used a different organic coolant than the Pekkor reactor in the U.S. did.
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It did not suffer the same following in sludge problems. The lack of problems may have been
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due to a combination of factors, including not using the coolant as a moderator,
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and also better control the chemistry. The design of the Pekkor reactor in the U.S. was based on
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their PWR designs and so inherently had large volumes of stagnant fluid, something that was not
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possible with a two-based design such as WR1. Preliminary work was done on turning this into a
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large power reactor design, but this did not proceed as Canada decided to focus on further
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development of existing water-based designs instead. HTGCR, high temperature gas cooled reactor.
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I have mentioned the bagnox and HDR reactors, but there were a variety of other gas cooled
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reactor designs. Some of these were built but generally as one off prototypes. These other
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reactors are all characterized by the following features, helium gas cooled, high temperature
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operation, graphite moderator. The fuel is sometimes referred to as prismatic, as it is in
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the form of blocks rather than the spheres used in pebble bed reactors. I'll mention pebble bed
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reactors in more detail later. It's not clear to me how refueling is carried out. Some used
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uranium thorium mixed oxide fuel. A variety of reactors are built in the 1960s, 70s and 80s,
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but always as one off prototypes. No gas cooled reactor other than the U.K.'s
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magnox and HDR designs have been commercial successes. However, there is renewed interest into
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this type of reactor today, mainly in connection with using the heat to directly power large
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process industries to replace burning fossil fuels in chemical or metallurgical applications.
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HWLWR, heavy water light water reactor or, also known as SGHWR, steam generating heavy water
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reactor. This was an odd style of reactor in that it combined features of several different
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reactors. There were a number of different reactors designed in several countries which use this type,
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although none went beyond single prototypes. Countries building them included Canada, the U.K.,
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Japan and Italy. Like a can do or PHWR reactor, they use a heavy water moderator in an
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unpressurized calendria. However, the coolant was light water rather than heavy water.
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The pressure tubes are oriented vertically rather than horizontally as found in a can do.
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There were all boiling water reactors in which the coolant boiled directly in the
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coolant channels, rather than an A separate steam generator. There seemed to be nothing inherently
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wrong with the concept, it seems they just did not for any advantages over other reactors already
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being built in those countries. Ractors making a comeback, next I will discuss a couple of types
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of reactor that have been around for a long time, but have recently started making a major
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comeback in terms of interest. Pebble bed reactors, this reactor type has a long history and its
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basic ideas go back to the very early days of nuclear power. Series attempts at commercializing
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it however, first took place in Germany or West Germany as it was known at the time in the early
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1960s. AVR. The first one was the 15 megawatt AVR reactor in the western most part of Germany.
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The concept behind the Pebble bed reactor is the fuel and graphite moderator where a single unit
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contained in many small spheres, each about the size of a billiard ball. The reactor was basically
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a bin full of these spheres. The coolant was helium gas which would circulate between the spheres.
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Fresh fuel spheres would be added at the top of the bin and spent fuel removed through the bottom.
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It ran from the late 1960s to late 1980s.
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THTR 300. The AVR was succeeded by the larger THTR 300 in the early 1980s.
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This supplied 300 megawatt's electricity to the grid, operating until the late 1980s.
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The helium coolant fed a steam generator which in turn operated a conventional steam plant.
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The reactor vessel was made from pre-stress concrete, the fuel with the mixture of uranium 235
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and thorium. South Africa, China and the US. Pebble bed technology was in licensed to a group in South
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Africa who pursued development for many years before money ran out.
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The technology was also licensed to a group in China.
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Chinese development led to first the HTR 10 prototype reactor in the 1990s and early 2000s
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and then the HTR PM reactors in which a pair of reactors feed a single
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210 megawatt steam turbine generator. This started operation in 2021.
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This Chinese plant is the one which people often refer to when they talk about small modular
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reactors in China. Part of the South African design team were then hired by an American company
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called X-energy who wanted to take the German and South African technology and sell it to the SMR market.
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Making a comeback? At this point it's hard to say whether pebble bed technology is actually
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making a comeback although there is renewed interest in it. MSR or molten salt reactors.
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The distinguishing feature of molten salt reactors is that they use molten chloride or fluoride
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salts as a coolant. Since the molten salt has a high boiling point, the reactor is
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unpressurized and steam is created in a steam generator. Slow or fast neutron reactors,
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molten salt reactors may be slow or fast neutron reactors. Slow neutron reactors would typically
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have a graphite moderator. Fast neutron reactors would not have a moderator. I will discuss
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fast neutron reactors in more general terms in another episode. Fuel. The fuel may be uranium,
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plutonium, thorium or mixture of these. The fuel may be in separate fuel pins like
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another reactor types or maybe dissolved in the salt. Some interest in molten salt reactors
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seems to be focused on using them to consume stored spent fuel from other types of reactors,
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such as light water reactors. The use of spent fuel is intended to provide a means of getting
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rid of long-lived radioactive waste from spent fuel by burning it in nuclear reactions.
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Salts. The salts are usually sodium, magnesium and calcium chloride or lithium fluoride salts.
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Chloride salts are typically used with uranium fuel in fast neutron reactors.
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Fluoride salts are typically used with thorium fuel in slow neutron reactors.
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Chloride salts are much less expensive than lithium fluoride salts,
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which require isotopically pure lithium-7. Why some variants used is all fuel?
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One major reason for dissolving the fuel in the salt, coolant, is to allow the removal of
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Protaktinium 233, which is produced as an intermediate product in the process of transmuting
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thorium 232 to uranium 233. Protaktinium 233, or PO 233, is a major neutron observer,
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and so interferes with the thorium reaction. To Protaktinium 233 decays into uranium 233 with a
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half life of 27 days after which it could be fed back into the fuel stream.
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Various design for thorium fuel would typically have a separate blanket of additional
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thorium around the reactor core in order to produce more uranium 233 from neutrons that would
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otherwise escape. Protaktinium 233 is not a significant problem in the blanket.
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History experiments with molten salt reactors date back to the 1960s and 70s.
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Recently interest has revived, with research being conducted in a number of countries on both
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dissolved and solid fuel versions. Types of molten salt reactor, there are many different
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variants of molten salt reactor, so I won't try to describe them all here. Some used solid fuel,
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some used fuel dissolved in the coolant, some used spheres similar to those used in
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pebble bed gas cooled reactors. Many of the reactor types described elsewhere in series have a
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molten salt equivalent. Pros and cons, pros. On the positive side, molten salts remain liquid up
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to a very high temperature, allowing that for the generation of high temperature steam which
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can drive a turbine efficiently. The high coolant temperature also allows for creating high
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temperature process heat for direct use in industry. The salts are non-corrosive to special
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alloys develop to handle them. The salts are not damaged by radiation. The dissolved salt
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reactors can be designed, such as an increase in temperature, cause a thermal expansion of the salt,
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which in turn reduces the rate of reaction, providing a passive self-regulating safety feature.
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Cons. In the dissolved fuel versions, the primary coolant is highly radioactive,
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making maintenance more difficult. The chemistry of the salt must be carefully maintained to
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prevent it from becoming corrosive. Lithium salts must be enriched, rather like uranium is often
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enriched, to nearly pure lithium 7 since lithium 6 will produce radioactive tridium when
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fissioned by neutrons. Supplies of fairly pure lithium 7 are limited as it is mainly produced
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as a byproduct of producing tridium. Birlium is used in some compositions and is highly toxic.
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Continuously chemically processing the coolant in the dissolved fuel variants adds complexity to the
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system. Overall, there are a very large number of molten salt designs. Of the less common
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reactor types, molten salt reactors are undoubtedly the ones which are seeing the most current
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interest in terms of numbers of new designs and the amount of current R&D. Conclusion. In this episode,
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we discussed some of the less common historical reactor types. As we have seen, there have been a
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number of different reactor designs, which are less commercially successful for one reason or another.
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Some of them may be making a comeback, however, particularly as the basis for a small reactor.
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In the next episode, we will describe fast neutron reactors. This concludes the fourth episode
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of a N8 part series on nuclear reactor technology.
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You have been listening to Hacker Public Radio at Hacker Public Radio.org.
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Today's show was contributed by a HPR listener like yourself.
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If you ever thought of recording podcast, click on our upload link
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to find out how easy it is.
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Hosting for HPR has been kindly provided by an AnHonestHost.com, the Internet Archive,
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rsync.net, and our mirror network.
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Unless otherwise stated, today's show is released under a Creative Commons
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Attribution-ShareAlike 4.0 International (CC BY-SA 4.0) license.
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