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首页> 外文期刊>Annals of nuclear energy >The coupled neutron transport calculation of Monte Carlo multi-group and continuous cross section
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The coupled neutron transport calculation of Monte Carlo multi-group and continuous cross section

机译:蒙特卡洛多群和连续截面的耦合中子输运计算

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摘要

It is well known that Monte Carlo neutron transport calculation based on the continuous cross section is with high precision, but the computing time is too long and memory consumption is large relative to the multi-group calculation. In contrast, the multi-group calculation is good both in terms of speed and memory relative the continuous calculation, but the short appears on S(alpha, beta) and resonance energy region. For combining the advantages of these two models, we firstly develop the collision mechanism based on material. Then the coupled model is investigated based on the multi-group and continuous. The continuous model was employed to treat the thermal and resonance energy ranges, the multi-group model uses in the other energy ranges. Different energy ranges are coupled through the neutron scattering and fission contributions between each other. We chose the ITER 1-D sphere model for test example. This example contains a great amount of hydrogen, deep-subcritical and involves thermal scattering and resonance. The result of continuous model is as standard. The cases of criticality fission source and fixed source are considered. The comparison shows good agreement between coupled and continuous model. The speedup of coupled model increases about two times relative continuous model. The validity of coupled model has been proved by numerical simulation. (C) 2018 Elsevier Ltd. All rights reserved.
机译:众所周知,基于连续横截面的蒙特卡洛中子输运计算具有较高的精度,但相对于多组计算,计算时间过长且内存消耗大。相比之下,相对于连续计算,多组计算在速度和内存方面都不错,但是在S(alpha,beta)和共振能量区域上出现了短路。为了结合这两种模型的优点,我们首先开发了基于材料的碰撞机理。然后基于多组连续模型研究耦合模型。连续模型用于处理热能和共振能量范围,多组模型用于其他能量范围。不同的能量范围通过彼此之间的中子散射和裂变贡献而耦合。我们选择ITER一维球面模型作为测试示例。此示例包含大量的氢(深亚临界),并涉及热散射和共振。连续模型的结果是标准的。考虑临界裂变源和固定源的情况。比较表明耦合模型和连续模型之间具有良好的一致性。耦合模型的提速是相对连续模型的两倍左右。数值模拟证明了耦合模型的有效性。 (C)2018 Elsevier Ltd.保留所有权利。

著录项

  • 来源
    《Annals of nuclear energy》 |2019年第5期|433-436|共4页
  • 作者单位

    Inst Appl Phys & Computat Math, Beijing 100094, Peoples R China|CAEP Software Ctr High Performance Numer Simulat, Beijing 100088, Peoples R China;

    Inst Appl Phys & Computat Math, Beijing 100094, Peoples R China|CAEP Software Ctr High Performance Numer Simulat, Beijing 100088, Peoples R China;

    CAEP Software Ctr High Performance Numer Simulat, Beijing 100088, Peoples R China;

    CAEP Software Ctr High Performance Numer Simulat, Beijing 100088, Peoples R China;

    CAEP Software Ctr High Performance Numer Simulat, Beijing 100088, Peoples R China;

    CAEP Software Ctr High Performance Numer Simulat, Beijing 100088, Peoples R China;

    CAEP Software Ctr High Performance Numer Simulat, Beijing 100088, Peoples R China;

    Inst Appl Phys & Computat Math, Beijing 100094, Peoples R China|CAEP Software Ctr High Performance Numer Simulat, Beijing 100088, Peoples R China;

    Inst Appl Phys & Computat Math, Beijing 100094, Peoples R China|CAEP Software Ctr High Performance Numer Simulat, Beijing 100088, Peoples R China;

    CAEP Software Ctr High Performance Numer Simulat, Beijing 100088, Peoples R China;

    CAEP Software Ctr High Performance Numer Simulat, Beijing 100088, Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Monte Carlo method; Multi-group; Continuous; S(alpha, beta); Resonance self-shielding; Coupled model;

    机译:蒙特卡罗法;多组;连续;S(alpha;beta);共振自屏蔽;耦合模型;

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