Published 2017 | Version v1
Journal article Open

ARES: A Parallel Discrete Ordinates Transport Code for Radiation Shielding Applications and Reactor Physics Analysis

  • 1. North China Electric Power University, No. 2 Beinong Road, Changping District, Beijing 102206, China

Description

ARES is a multidimensional parallel discrete ordinates particle transport code with arbitrary order anisotropic scattering. It can be applied to a wide variety of radiation shielding calculations and reactor physics analysis. ARES uses state-of-the-art solution methods to obtain accurate solutions to the linear Boltzmann transport equation. A multigroup discretization is applied in energy. The code allows multiple spatial discretization schemes and solution methodologies. ARES currently provides diamond difference with or without linear-zero flux fixup, theta weighted, directional theta weighted, exponential directional weighted, and linear discontinuous finite element spatial differencing schemes. Discrete ordinates differencing in angle and spherical harmonics expansion of the scattering source are adopted. First collision source method is used to eliminate or mitigate the ray effects. Traditional source iteration and Krylov iterative method preconditioned with diffusion synthetic acceleration are applied to solve the linear system of equations. ARES uses the Koch-Baker-Alcouffe parallel sweep algorithm to obtain high parallel efficiency. Verification and validation for the ARES transport code system have been done by lots of benchmarks. In this paper, ARES solutions to the HBR-2 benchmark and C5G7 benchmarks are in excellent agreement with published results. Numerical results are presented which demonstrate the accuracy and efficiency of these methods.

Files

10.1155_2017_2596727.pdf

Files (2.9 MB)

Name Size Download all
md5:56147fbb969bc841a99b07d041731556
2.9 MB Preview Download

System files (50.0 kB)

Name Size Download all

Additional details

Identifiers

DOI
10.1155/2017/2596727;
Crossref Funder ID
10.13039/501100001809;

Publishing Information

Journal Title
Science and Technology of Nuclear Installations
Journal Volume
2017
Journal Page Range
1-11
ISSN
1687-6075

Optional Information

Copyright
© Author(s)
Contract/Grant/Project number
11505059, 11575061, 2016MS59
Notes
Record automatically processed
Funding organization
National Natural Science Foundation of China, Fundamental Research Funds for the Central Universities