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Physics-based multiscale coupling for full core nuclear reactor simulation

机译:基于物理的多核耦合用于全核反应堆模拟

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摘要

Numerical simulation of nuclear reactors is a key technology in the quest for improvements in efficiency, safety, and reliability of both existing and future reactor designs. Historically, simulation of an entire reactor was accomplished by linking together multiple existing codes that each simulated a subset of the relevant multiphysics phenomena. Recent advances in the MOOSE (Multiphysics Object Oriented Simulation Environment) framework have enabled a new approach: multiple domain-specific applications, all built on the same software framework, are efficiently linked to create a cohesive application. This is accomplished with a flexible coupling capability that allows for a variety of different data exchanges to occur simultaneously on high performance parallel computational hardware. Examples based on the KAIST-3A benchmark core, as well as a simplified Westinghouse AP-1000 configuration, demonstrate the power of this new framework for tackling—in a coupled, multiscale manner—crucial reactor phenomena such as CRUD-induced power shift and fuel shuffle.
机译:核反应堆的数值模拟是寻求提高现有和未来反应堆设计的效率,安全性和可靠性的一项关键技术。从历史上看,整个反应堆的模拟是通过将多个现有代码链接在一起来完成的,每个现有代码都模拟了相关多物理现象的子集。 MOOSE(面向多物理对象的仿真环境)框架的最新进展实现了一种新方法:将所有都构建在同一软件框架上的多个特定于域的应用程序有效地链接在一起,以创建一个具有凝聚力的应用程序。这是通过灵活的耦合功能实现的,该功能允许在高性能并行计算硬件上同时发生各种不同的数据交换。基于KAIST-3A基准核以及简化的Westinghouse AP-1000配置的示例展示了这种新框架以应对方式(以多尺度方式耦合)应对关键反应堆现象(如CRUD引起的功率转换和燃料)的强大功能洗牌。

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