AbstractDue to the interactions between more than one physics, multiphysics problems such as those encountered in aerospa'/> ANSYS Workbench System Coupling: a state-of-the-art computational framework for analyzing multiphysics problems
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ANSYS Workbench System Coupling: a state-of-the-art computational framework for analyzing multiphysics problems

机译:ANSYS Workbench系统耦合:用于分析多物理场问题的最新计算框架

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AbstractDue to the interactions between more than one physics, multiphysics problems such as those encountered in aerospace, biomedical, civil, and nuclear engineering domains tend to be extremely challenging to simulate. This paper discusses a novel and versatile computational framework called System Coupling being developed at ANSYS Inc. that can simulate complex multiphysics coupled problems and also presents comprehensive verification and validation studies. System Coupling is a generic computational infrastructure that allows individual physics solvers running as different processes either within the same physical machine or on different machines in the network to communicate with one another using an in-house socket-based remote procedure call library. The infrastructure is capable of handling a variety of multiphysics coupled analyses such as those related to fluid–structure–thermal interactions. Thus far, ANSYS Mechanical/APDL, ANSYS FLUENT, and ANSYS CFX which are ANSYS’ major computational structural and fluid dynamics solvers were instrumented to work with the System Coupling infrastructure. Verification and validation studies involving different fluid–structure interaction scenarios drawn from a variety of applications in various engineering domains are presented in the paper.
机译: Abstract 由于一种以上的物理学之间的相互作用,多物理场问题(例如航空航天,生物医学,土木和核工程领域的仿真往往极具挑战性。本文讨论了ANSYS Inc.开发的一种新颖且通用的计算框架,称为系统耦合,可以模拟复杂的多物理场耦合问题,并提供全面的验证和确认研究。系统耦合是一种通用的计算基础结构,它允许使用同一内部基于套接字的远程过程调用库,在同一物理机器内或网络中不同机器上以不同进程运行的各个物理求解器相互通信。基础设施能够处理多种多物理场耦合分析,例如与流体-结构-热相互作用有关的分析。到目前为止,已经对作为ANSYS主要的计算结构和流体动力学求解器的ANSYS Mechanical / APDL,ANSYS FLUENT和ANSYS CFX进行了测试,以与系统耦合基础结构配合使用。本文介绍了涉及不同流体-结构相互作用场景的验证和确认研究,这些场景来自不同工程领域的各种应用。

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