多物理
解算器
非线性系统
外推法
有限元法
机械
热的
磁场
传热
电磁场
计算机科学
消散
机械工程
材料科学
物理
工程类
热力学
数学
数学分析
程序设计语言
量子力学
作者
Hongliang Li,Philip T. Krein,Jian‐Ming Jin
标识
DOI:10.1109/jmmct.2022.3229963
摘要
A nonlinear electromagnetic (EM)-thermal coupled solver is developed for modeling ferromagnetic materials widely used in electric motors. To accurately predict machine performance, the time-domain finite element method is employed to solve this multiphysics problem. By adopting the nonlinear B-H models to account for hysteresis effects, magnetic core losses are computed as the major sources of power dissipation for magnetic materials. The resulting temperature change is then obtained and its effect on the magnetic properties is subsequently evaluated. Due to different time scales of EM field variations and heat transfer processes, different time step sizes are adopted to enhance the simulation speed. During thermal time marching, the EM solver is invoked adaptively based on material property changes, and EM losses are calculated and updated through extrapolation, resulting in an efficient EM-thermal coupling scheme. Numerical examples are presented to validate the accuracy and capabilities of the proposed EM-thermal co-simulation framework.
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