breeder$9589$ - traduzione in greco
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breeder$9589$ - traduzione in greco

NUCLEAR REACTOR GENERATING MORE FISSILE MATERIAL THAN IT CONSUMES
Fast breeder reactor; LMFBR; Plutonium economy; Nuclear breeder reactor; Breeder Reactor; Transmuter reactor; Fast breeder; Thermal breeder reactor; Fast breeder nuclear reactor; Light-Water Breeder Reactor; Breeder ratio; Fast Breeder Reactor; Burner reactor; Liquid Metal Fast Breeder Reactor; Breed reactor; Breeder nuclear fission; Conversion ratio; Breeding ratio
  • [[Experimental Breeder Reactor II]], which served as the prototype for the Integral Fast Reactor
  • A cutaway model of the BN-600 reactor, superseded by the [[BN-800 reactor]] family.
  • The [[Marcoule Nuclear Site]] in France, location of the [[Phénix]] (on the left).
  • MW]] (thermal), 20 MW (electric), sodium-cooled, pool-type reactor with a 30-year design lifetime and a target [[burnup]] of 100 MWd/kg.
  • Assembly of the core of [[Experimental Breeder Reactor I]] in [[Idaho]], [[United States]], 1951
  • Production of heavy transuranic actinides in current thermal-neutron fission reactors through neutron capture and decays. Starting at uranium-238, isotopes of plutonium, americium, and curium are all produced. In a fast neutron-breeder reactor, all these isotopes may be burned as fuel.
  • The Shippingport Reactor, used as a prototype light water breeder for five years beginning in August 1977

breeder      
n. ζωότροφος, κτηνοτρόφος

Definizione

breeder
n. a cattle, livestock; horse; poultry breeder

Wikipedia

Breeder reactor

A breeder reactor is a nuclear reactor that generates more fissile material than it consumes. These reactors can be fuelled with more commonly available isotopes of uranium and thorium, such as uranium-238 or thorium-232, as opposed to the rare uranium-235 which is used in conventional reactors. These materials are called fertile materials since they can be bred into fuel by these breeder reactors.

Breeder reactors achieve this because their neutron economy is high enough to create more fissile fuel than they use. These extra neutrons are absorbed by the fertile material that is loaded into the reactor along with fissile fuel. This irradiated fertile material in turns transmutes into fissile material which can undergo fission reactions.

Breeders were at first found attractive because they made more complete use of uranium fuel than light-water reactors, but interest declined after the 1960s, as more uranium reserves were found, and new methods of uranium enrichment reduced fuel costs.