Advances Towards Elastic-Perfectly Plastic Simulation of the Core of Printed Circuit Heat Exchangers

Alon Katz, Devesh Ranjan
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引用次数: 3

Abstract

Printed circuit heat exchangers (PCHEs) are used in a number of novel nuclear reactor designs. In order to use a PCHE as a primary coolant confinement unit in the United States, the stress and strain must be modeled under realistic service loads, and shown to remain within limits imposed by ASME standards. Due to the complex geometry and multi-length scale features, direct simulation of the stress and strain in a utility scale PCHE is not practical because of the large number of degrees of freedom. This work presents an algorithm to model damage to the core region of a PCHE using planar 2D formulation and realistic service loads. We compare how closely the results from three different planar formulations match the results of a corresponding 3D model. We also explore other ways of reducing the size of the numerical model required to accurately simulate the stress and strain in the core region of a PCHE. Finally, we perform strain-limits evaluation on a core region of a PCHE using fully temperature coupled, elastic perfectly plastic material properties, and realistic service loads, obtained from plant dynamics code of sodium cooled fast reactor coupled with a supercritical CO2 Brayton cycle. For our analyses, we used CSIMSOFT Trelis: a commercial meshing software, Multi Object Oriented Solver Environment (MOOSE): an open source finite elements solver, and Paraview: an open source post processing tool. Our methodology is presented and discussed in sufficient detail so that the work can be reproduced by others.
印刷电路热交换器芯的弹塑性模拟研究进展
印刷电路热交换器(PCHEs)在许多新型核反应堆设计中得到了应用。为了在美国使用PCHE作为主要冷却剂约束单元,应力和应变必须在实际使用负载下进行建模,并显示在ASME标准规定的限制范围内。由于PCHE具有复杂的几何形状和多长度尺度的特点,在实用规模的PCHE中直接模拟应力和应变是不现实的,因为自由度很大。这项工作提出了一种算法,利用平面二维公式和实际的服务负载来模拟PCHE核心区域的损伤。我们比较了三种不同平面公式的结果与相应3D模型的结果的匹配程度。我们还探索了减少数值模型尺寸的其他方法,以准确模拟PCHE核心区的应力和应变。最后,我们对PCHE的核心区域进行了应变极限评估,使用完全温度耦合,弹性完全塑性材料特性和实际服务载荷,从钠冷快堆与超临界CO2布雷顿循环耦合的工厂动力学代码中获得。对于我们的分析,我们使用了CSIMSOFT Trelis:一个商业网格软件,面向多对象的求解器环境(MOOSE):一个开源的有限元求解器,以及Paraview:一个开源的后处理工具。我们的方法被充分详细地介绍和讨论,以便其他人可以复制这项工作。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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