Reactimeter of the IBR-2M Periodic Pulse Reactor

A reactimeter was developed for the IBR-2 periodic-pulse reactor. The reactor kinetics was described by difference equations, which relate the reactor’s parameters, corresponding to the instantaneous and preceding power pulses, and the nonlinear dependences of the energy of the power pulse and its a...

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Published in:Atomic energy (New York, N.Y.) Vol. 117; no. 5; pp. 307 - 313
Main Authors: Marachev, A. A., Pepelyshev, Yu. N., Popov, A. K., Sumkhuu, D.
Format: Journal Article
Language:English
Published: Boston Springer US 01-03-2015
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Abstract A reactimeter was developed for the IBR-2 periodic-pulse reactor. The reactor kinetics was described by difference equations, which relate the reactor’s parameters, corresponding to the instantaneous and preceding power pulses, and the nonlinear dependences of the energy of the power pulse and its amplitude on the reactivity. The fact that the regulated parameter of the reactor is the relative deviation of the amplitude of the power pulse from its base (prescribed average) value was taken into account. In studying transient processes, a statistically optimal filter was used to suppress the reactivity noise due to the reactor’s construction and principle of operation. The best location for inserting the filter in the block diagram of the reactimeter was chosen and the optimal smoothing coefficient determined.
AbstractList A reactimeter was developed for the IBR-2 periodic-pulse reactor. The reactor kinetics was described by difference equations, which relate the reactor's parameters, corresponding to the instantaneous and preceding power pulses, and the nonlinear dependences of the energy of the power pulse and its amplitude on the reactivity. The fact that the regulated parameter of the reactor is the relative deviation of the amplitude of the power pulse from its base (prescribed average) value was taken into account. In studying transient processes, a statistically optimal filter was used to suppress the reactivity noise due to the reactor's construction and principle of operation. The best location for inserting the filter in the block diagram of the reactimeter was chosen and the optimal smoothing coefficient determined.
Audience Academic
Author Pepelyshev, Yu. N.
Marachev, A. A.
Sumkhuu, D.
Popov, A. K.
Author_xml – sequence: 1
  givenname: A. A.
  surname: Marachev
  fullname: Marachev, A. A.
  organization: Moscow Institute of Open Education
– sequence: 2
  givenname: Yu. N.
  surname: Pepelyshev
  fullname: Pepelyshev, Yu. N.
  organization: Joint Institute for Nuclear Research (JINR)
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  givenname: A. K.
  surname: Popov
  fullname: Popov, A. K.
  organization: Joint Institute for Nuclear Research (JINR)
– sequence: 4
  givenname: D.
  surname: Sumkhuu
  fullname: Sumkhuu, D.
  organization: Joint Institute for Nuclear Research (JINR)
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Cites_doi 10.1115/1.3658902
10.13182/NT02-A3299
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Issue 5
Keywords Transient Process
Optimal Filter
Prompt Neutron
Power Pulse
Pulse Reactor
Language English
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CR10
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CR5
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II Bondarenko (9926_CR1) 1959; 7
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J Kipin (9926_CR7) 1967
9926_CR4
AK Popov (9926_CR2) 2002; 139
AK Popov (9926_CR11) 2008
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9926_CR10
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Snippet A reactimeter was developed for the IBR-2 periodic-pulse reactor. The reactor kinetics was described by difference equations, which relate the reactor’s...
A reactimeter was developed for the IBR-2 periodic-pulse reactor. The reactor kinetics was described by difference equations, which relate the reactor's...
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StartPage 307
SubjectTerms Amplitudes
Deviation
Difference equations
Energy
Hadrons
Heavy Ions
Neutrons
Noise
Nonlinearity
Nuclear Chemistry
Nuclear Energy
Nuclear Physics
Nuclear reactors
Optimization
Physics
Physics and Astronomy
Reactors
Smoothing
Studies
Systems design
Title Reactimeter of the IBR-2M Periodic Pulse Reactor
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