Monte Carlo Methods for Particle Transport

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A01=Alireza Haghighat
advanced algorithms
Albedo Boundary Condition
Angular Flux
Author_Alireza Haghighat
automatic variance reduction
Category=PBT
computational physics
Cumulative Distribution Function
Discrete Random Variable
eigenvalue Monte Carlo's calculations
Eigenvalue Parameters
eq_isMigrated=1
eq_isMigrated=2
eq_nobargain
Fission Densities
fission matrix
Fission Neutron
Fission Source
Fixed Source Problems
Fixed-Source Monte Carlo Particle Transport
FOM
Fuel Assembly
graduate level textbook
hybrid Monte Carlo simulation techniques
Importance Function
Integrals
LBE
MC
Monte Carlo Algorithm
Monte Carlo Code
Monte Carlo Method
Monte Carlo Particle Transport
Nuclear Physics
Parallel Processing
Particle Transport
Particle Transport Problems
Path Length Estimator
probability theory
Random Numbers
Random Variable
random variables
scientific simulation
stochastic modeling
stratified sampling technique
Vacuum Boundary Condition
Variance Reduction Techniques

Product details

  • ISBN 9780367538095
  • Weight: 453g
  • Dimensions: 156 x 234mm
  • Publication Date: 29 Apr 2022
  • Publisher: Taylor & Francis Ltd
  • Publication City/Country: GB
  • Product Form: Paperback
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Fully updated with the latest developments in the eigenvalue Monte Carlo calculations and automatic variance reduction techniques and containing an entirely new chapter on fission matrix and alternative hybrid techniques. This second edition explores the uses of the Monte Carlo method for real-world applications, explaining its concepts and limitations. Featuring illustrative examples, mathematical derivations, computer algorithms, and homework problems, it is an ideal textbook and practical guide for nuclear engineers and scientists looking into the applications of the Monte Carlo method, in addition to students in physics and engineering, and those engaged in the advancement of the Monte Carlo methods.

  • Describes general and particle-transport-specific automated variance reduction techniques
  • Presents Monte Carlo particle transport eigenvalue issues and methodologies to address these issues
  • Presents detailed derivation of existing and advanced formulations and algorithms with real-world examples from the author’s research activities

Dr. Alireza Haghighat is professor and Director of Nuclear Engineering Program, Virginia Tech. He is a fellow of the American Nuclear Society. He has made pioneering contributions to the development of accurate and efficient deterministic, stochastic, and hybrid particle transport theory methods and their application to complex problems in nuclear reactors, nuclear security and radiation diagnosis and therapy.

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