Domain Decomposition Strategy for Pin-wise Full-Core Monte Carlo Depletion Calculation with the Reactor Monte Carlo Code

被引:11
|
作者
Liang, Jingang [1 ]
Wang, Kan [1 ]
Qiu, Yishu [1 ]
Chai, Xiaoming [2 ]
Qiang, Shenglong [2 ]
机构
[1] Tsinghua Univ, Dept Engn Phys, LiuQing Bldg, Beijing 100084, Peoples R China
[2] Nucl Power Inst China, Sci & Technol Reactor Syst Design Technol Lab, Changshun Ave 328, Chengdu 610041, Peoples R China
关键词
Domain Decomposition; Full-Core Depletion; Monte Carlo; Reactor Monte Carlo; RPHA15; SIMULATIONS; ROBUST; RMC;
D O I
10.1016/j.net.2016.01.015
中图分类号
TL [原子能技术]; O571 [原子核物理学];
学科分类号
0827 ; 082701 ;
摘要
Because of prohibitive data storage requirements in large-scale simulations, the memory problem is an obstacle for Monte Carlo (MC) codes in accomplishing pin-wise three-dimensional (3D) full-core calculations, particularly for whole-core depletion analyses. Various kinds of data are evaluated and quantificational total memory requirements are analyzed based on the Reactor Monte Carlo (RMC) code, showing that tally data, material data, and isotope densities in depletion are three major parts of memory storage. The domain decomposition method is investigated as a means of saving memory, by dividing spatial geometry into domains that are simulated separately by parallel processors. For the validity of particle tracking during transport simulations, particles need to be communicated between domains. In consideration of efficiency, an asynchronous particle communication algorithm is designed and implemented. Furthermore, we couple the domain decomposition method with MC burnup process, under a strategy of utilizing consistent domain partition in both transport and depletion modules. A numerical test of 3D full-core burnup calculations is carried out, indicating that the RMC code, with the domain decomposition method, is capable of pin-wise full-core burnup calculations with millions of depletion regions. Copyright (C) 2016, Published by Elsevier Korea LLC on behalf of Korean Nuclear Society.
引用
收藏
页码:635 / 641
页数:7
相关论文
共 50 条
  • [41] MCCARD: MONTE CARLO CODE FOR ADVANCED REACTOR DESIGN AND ANALYSIS
    Shim, Hyung Jin
    Han, Beom Seok
    Jung, Jong Sung
    Park, Ho Jin
    Kim, Chang Hyo
    NUCLEAR ENGINEERING AND TECHNOLOGY, 2012, 44 (02) : 161 - 176
  • [42] Development and Application of COSINE Reactor Monte Carlo Code cosRMC
    Yu, Hui
    Quan, Guoping
    Qin, Yao
    Yan, Yiman
    Chen, Yixue
    Hedongli Gongcheng/Nuclear Power Engineering, 2021, 42 (03): : 218 - 223
  • [43] ESP - GENERAL REACTOR ANALYSIS MONTE-CARLO CODE
    CRAMER, SN
    CARLSMIT.RS
    LUCIUS, JL
    MORRISON, GW
    PERRY, GW
    NUCLEAR SCIENCE AND ENGINEERING, 1972, 49 (01) : 109 - &
  • [44] Monte Carlo code for reactor analysis - RMC2.0
    Li, Ze-Guang
    Wang, Kan
    She, Ding
    Xu, Qi
    Liu, Yu-Xuan
    Hedongli Gongcheng/Nuclear Power Engineering, 2010, 31 (SUPPL. 2): : 43 - 47
  • [45] A full Monte Carlo simulation code for silicon strip detectors
    Brigida, M
    Favuzzi, C
    Fusco, P
    Gargano, F
    Giglietto, N
    Giordano, F
    Loparco, F
    Marangelli, B
    Mazziotta, MN
    Mirizzi, N
    Rainò, S
    Spinelli, P
    NUCLEAR PHYSICS B-PROCEEDINGS SUPPLEMENTS, 2006, 150 : 58 - 61
  • [46] A Monte Carlo code for full simulation of a transition radiation detector
    Mazziotta, MN
    COMPUTER PHYSICS COMMUNICATIONS, 2000, 132 (1-2) : 110 - 123
  • [47] Development and benchmark calculation of multigroup Monte Carlo code MCMG
    Department of Nuclear Science and System Engineering, Shanghai Jiaotong University, Shanghai 200030, China
    不详
    不详
    Hedongli Gongcheng, 2007, 1 (9-12+17):
  • [48] Monte Carlo calculation of the diffusion coefficient of nuclear reactor cells
    Gorodkov, S. S.
    Kalugin, M. A.
    ATOMIC ENERGY, 2009, 106 (04) : 231 - 237
  • [49] Pin-by-Pin Coupled Transient Monte Carlo Analysis Using the iMC Code
    Kim, HyeonTae
    Kim, Yonghee
    FRONTIERS IN ENERGY RESEARCH, 2022, 10
  • [50] Monte Carlo calculation of the diffusion coefficient of nuclear reactor cells
    S. S. Gorodkov
    M. A. Kalugin
    Atomic Energy, 2009, 106 : 231 - 237