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An assessment of coupling algorithms for nuclear reactor core physics simulations

机译:核反应堆堆芯物理模拟耦合算法的评估

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This paper evaluates the performance of multiphysics coupling algorithms applied to a light water nuclear reactor core simulation. The simulation couples the k-eigenvalue form of the neutron transport equation with heat conduction and subchannel flow equations. We compare Picard iteration (block Gauss-Seidel) to Anderson acceleration and multiple variants of preconditioned Jacobian-free Newton-Krylov (JFNK). The performance of the methods are evaluated over a range of energy group structures and core power levels. A novel physics-based approximation to a Jacobian-vector product has been developed to mitigate the impact of expensive on-line cross section processing steps. Numerical simulations demonstrating the efficiency of JFNK and Anderson acceleration relative to standard Picard iteration are performed on a 3D model of a nuclear fuel assembly. Both criticality (k-eigenvalue) and critical boron search problems are considered. (C) 2016 Elsevier Inc. All rights reserved.
机译:本文评估了应用于轻水核反应堆堆芯仿真的多物理场耦合算法的性能。模拟将中子输运方程的k特征值形式与热传导和子通道流动方程耦合在一起。我们将Picard迭代(块高斯-赛德尔)与安德森加速度和预处理的无雅可比的牛顿-克里洛夫(JFNK)的多个变体进行比较。在各种能量组结构和核心功率水平上评估了这些方法的性能。已经开发出一种新颖的基于物理学的雅可比矢量乘积近似值,以减轻昂贵的在线横截面处理步骤的影响。在核燃料组件的3D模型上执行了证明JFNK和Anderson加速相对于标准Picard迭代的效率的数值模拟。同时考虑了临界度(k-特征值)和临界硼搜索问题。 (C)2016 Elsevier Inc.保留所有权利。

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