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Plaintext
196 lines
11 KiB
Plaintext
Episode: 4543
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Title: Nuclear Reactor Technology - Ep 3 Reactor Basics
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Source: https://hub.hackerpublicradio.org/ccdn.php?filename=/eps/hpr4543/hpr4543.mp3
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Transcribed: 2026-07-31 16:13:36 (official HPR transcript)
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---
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This is Hacker Public Radio Episode 4543, for 2025-12-31
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Today's show is entitled, "Nuclear Reactor Technology - Ep 3 Reactor Basics"
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The host is Whiskeyjack and the duration is 00:11:22
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The flag is Clean, and the license is CC-BY-SA
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The summary is "Basic features of reactors and descriptions of the most widely used commercial reactor types."
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This episode is a third in an eight-part series on nuclear reactor technology.
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In the previous episode, we covered types of nuclear fuel, recycling of nuclear fuel, uranium
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and thorium resources, and medical isotopes.
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In this episode, we will describe the basic features and characteristics of reactors
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together with descriptions of the most widely used commercial reactor types.
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All commercial power-efficient reactors use similar principles, a nuclear reaction
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in the fuel generates heat.
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The heat is carried away by a coolant to a turbine which spends a generator to create electricity.
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Fast versus slow reactors, reactors can be placed into more or less two categories,
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fast and slow or thermal reactors, the latitude terms are equivalent.
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The term refers to the type of nuclear-efficient reaction which predominates in the reactor.
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Slow neutron reactors, slow or thermal reactors use slow or thermal neutrons.
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Slow neutron reactors are by far the most common type in commercial service.
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They are cheaper and easier to build and operate.
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However, they can only use a small part of the nuclear fuel.
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With a straightforward uranium fuel, they can only use the U-235 isotope, plus part of any
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plutonium which is created during the reaction.
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With uranium plutonium mox fuel, they can use the physal plutonium isotopes, but not the others.
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Some U-238 will be converted to physal plutonium, and then consumed in the reaction, but for
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most reactor types, the majority of the energy comes from the U-235.
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Thorium plutonium, or Thorium uranium mox fuel, can be used as slow reactors, but the fuel
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cycle requires a continual input of fresh physal fuel, plutonium in most proposals, from
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uranium cycle reactors.
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Nearly all commercial power reactors have been some form of slow reactor.
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Fast neutron reactors, fast reactors use fast neutrons.
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Fast reactors can use fuel more efficiently, but a more complex and expensive to build
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and operate.
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At least, some designs of fast reactors can produce more plutonium from U-238 than they
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consume.
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This allows a fast reactor to produce plutonium for several slow reactors using uranium
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or Thorium-based mox fuel.
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Only a small number of fast reactors have been built.
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The commercialization of fast reactors will probably depend upon uranium becoming much
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more expensive and so making recycling a few more attractive.
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At present, uranium is so abundant and cheap that there isn't a lot of incentive to
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economize on it.
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Some most fuel is used in a one-through fuel cycle.
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A reactor moderators, a moderator is a material that is used to slow down neutrons so
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they are more likely to react with the nuclear items in the fuel.
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Some sort of moderator is normally required to have a self-sustaining reaction for slow
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neutron reactors.
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The main moderator materials are water, heavy water, and graphite.
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Fast reactors do not use a moderator, instead they use the unmotorated fast neutrons directly.
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However, this means that fast reactors must be built from materials which won't unintentionally
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moderate the reaction.
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Light water.
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Ordinary water is commonly referred to as light water to distinguish it from heavy water.
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Light water is a moderately good moderator, although not as good as some of the common alternatives.
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Reactors using light water as a moderator must use enriched uranium as fuel.
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Heavy water.
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Heavy water differs from ordinary water, and that is molecules contain heavy hydrogen,
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more commonly known as deuterium.
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While regular hydrogen has a nucleus containing only a proton, deuterium has a proton
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and a neutron.
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Deuterium is often used in the industry to refer to heavy water, although technically
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it's only the hydrogen atoms which are deuterium.
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Deuterium is extracted from normal water, but any of several different processes which
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I won't go into here.
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Heavy water is a very efficient moderator.
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Due to this, reactors using heavy water moderators can be fueled on natural unenriched uranium.
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Some proposed designs have used slightly enriched uranium, but this is just to reduce the
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size of the reactor.
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Graphite.
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Graphite is a form of carbon.
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Graphite is also a good moderator.
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Reactors using a graphite moderator can also be fueled on natural uranium.
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However, some graphite moderated reactors have used enriched uranium.
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Unmoderated.
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As mentioned previously, fast reactors not use a moderator as they use fast neutrons directly
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in the reaction.
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Coolants.
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In commercial-fission power reactors, the nuclear reactions used to produce heat.
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This heat is then usually used to boil water to produce steam, which a steam being used
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to drive a steam turbine, which spins a generator to produce electricity.
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Common coolants.
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The common coolants in commercial-fission power reactors are light water, heavy water, or
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a gas such as helium or carbon dioxide.
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Alternative coolants.
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Some alternative coolants which have been tried or proposed are a liquid metal of some
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sort, an organic oil-coolant, molten salt.
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Depending on the design, a reactor may use the same material for the coolant as it used
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for the moderator, or they may be different.
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Primary and secondary coolant loops.
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The primary coolant is the coolant that comes in direct contact with the nuclear fuel
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assemblies.
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In many reactor types, this coolant is then passed through a heat exchanger to heat a secondary
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coolant.
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The secondary coolant will then typically be turned into steam to drive a turbine.
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The primary and secondary coolant may be the same material or different materials.
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The secondary coolant is usually light water.
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Some reactor types do not have a secondary coolant loop.
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Instead, they boil water directly in the reactor, and this steam is then passed directly
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to the steam turbines.
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Steam generation.
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Most commercial power reactors are used to generate steam, which is used to drive a turbine,
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which in terms spins a generator to make electricity.
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The steam is normally created in one of two ways.
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By far, the most common way is to run the hot coolant through a heat exchanger, known
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as a steam generator.
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The coolant boils the water in the steam generator.
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The steam is then used to drive a turbine.
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The steam that runs through the turbine is kept separate from the coolant material, and
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the water that goes through the turbine never passes through the reactor itself.
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This is the most common design.
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The other common method is to allow the coolant water in the reactor to boil, and
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then using that steam to directly to drive a turbine.
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Braton cycle gas turbines.
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An alternative to steam turbines is to use a hot gas such as helium to drive a gas turbine
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directly.
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This is called a Braton cycle.
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That's BR-A-Y-T-O-N.
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This removes the need to have steam generation equipment, but the very hot gas presents
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other difficulties in terms of materials and design.
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Braton cycle turbines have seen very little use in nuclear power.
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Refueling method.
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The uranium fuel must be replaced on a regular basis, with the fuel lasting no more than
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a couple of years or so.
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Offline refueling refers to shutting down the reactor to replace the fuel.
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Online refueling refers to refueling a reactor continuously while it is in operation.
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Refueling method used is determined by the reactor's design.
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Main commercial reactor types.
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The following gives a brief overview of the most common commercial reactor types.
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I will cover the less common models, including some more unusual ones, later on in other
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episodes.
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PWR.
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Percerized water reactor.
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This is the most widely used style of commercial power reactor.
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The name is usually abbreviated as PWR.
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These are made by a number of companies in a wide variety of countries around the world.
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It is characterized by the following features.
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The moderator is light water.
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The coolant is also light water.
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The moderator and coolant are mixed together.
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There is no distinguishing between them.
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Steam is generated in a separate steam generator and does not boil in the reactor.
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It uses enriched fuel, usually 3 to 5% uranium 235.
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Refueling is conducted offline with the reactor shut down.
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The reactor itself is a large metal pot called the reactor vessel, containing the fuel,
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moderator, and coolant altogether.
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PWR.
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Boiling water reactor.
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This is less common than the PWR, but there are a large number of them.
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The name is generally abbreviated as PWR.
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There are most common in the USA.
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A PWR is very similar to a PWR, with the exception that the primary coolant is
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allowed to boil in the reactor vessel and then drives a steam turbine directly.
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There is no steam generator or secondary coolant.
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Other than this, the PWR and PWR are very similar.
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PHWR, pressurized heavy water reactor.
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This is also known as a can-do reactor named after the most common model.
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It was developed in Canada and also used by a number of other countries in Europe, Asia,
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and South America.
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India developed their own version based on Canadian technology and these are used in India.
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It is characterized by the following features.
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The moderator is heavy water, the coolant is also heavy water.
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The moderator and coolant are kept separate and do not mix.
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Steam is created in a separate steam generator and does not boil in the reactor.
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It uses natural uranium fuel, no enrichment is required.
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The reactor itself is a set of hundreds of separate pressure tubes,
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running through large, un-pressurized tank of heavy water, known as the Kalandria.
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Re-fielding is conducted online with the reactor running at full power by depressurizing
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one-two at a time.
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The Kalandria contains the moderator.
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The heavy water in the Kalandria remains that ambient temperature and is not heated.
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The fuel is in the pressure tubes in fuel bundles.
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These fuel bundles are much shorter than the fuel rods used in PWRs or BWRs.
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The coolant runs through the pressure tubes around the fuel bundles.
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The reactor design is very flexible in terms of the sort of fuel it could run on due
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to its excellent neutron economy.
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Conclusion We have covered the main reactor characteristics.
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These characteristics can be mixed in various ways to give different reactor types.
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The characteristics also affect the type of fuel that can be used.
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We also covered the three main commercial power generation reactor types.
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In the next episode, we will describe some of the less common historical reactor types.
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This concludes the third episode of an eight-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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