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High-Fidelity Magnetic Equivalent Circuit Model for an Axisymmetric Electromagnetic Actuator

机译:轴对称电磁执行器的高保真磁等效电路模型

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摘要

A computationally inexpensive magnetic equivalent circuit (MEC) improves axisymmetric electromagnet design and modeling tools by accurately capturing fringing and leakage effects. Lumped parameter MEC models are typically less accurate for modeling electromagnetic devices than distributed parameter finite-element models (FEMs). However, MEC models require significantly less computational time to solve than FEMs and therefore lend themselves to applications where solution time is critical, such as in optimization routines, dynamic simulation, or preliminary design. This paper describes how fringing permeances in axisymmetric electromagnetic devices can be derived and then included in a MEC model. Including fringing field effects significantly decreases error in the MEC model, creating a more accurate, or high fidelity, magnetic equivalent circuit (HFMEC). Eighty-nine electromagnets with unique geometries, coil currents, and materials were modeled with MEC, HFMEC, and FEM methods. The axisymmetric HFMEC developed in this work had 67% less average force error and 88% less average flux error compared to traditional MEC results while still being computationally inexpensive to solve.
机译:计算上便宜的磁等效电路(MEC)通过精确捕获边缘和泄漏效应来改善轴对称电磁体的设计和建模工具。集总参数MEC模型通常不如分布式参数有限元模型(FEM)准确。但是,与FEM相比,MEC模型所需的计算时间少得多,因此适合于解决时间至关重要的应用程序,例如优化例程,动态仿真或初步设计。本文介绍了如何导出轴对称电磁设备中的边缘磁导,然后将其包含在MEC模型中。包含边缘场效应可显着降低MEC模型中的误差,从而创建更准确或更高精度的磁等效电路(HFMEC)。使用MEC,HFMEC和FEM方法对具有独特几何形状,线圈电流和材料的89个电磁体进行了建模。与传统的MEC结果相比,这项工作中开发的轴对称HFMEC的平均力误差降低了67%,平均磁通误差降低了88%,但在计算上仍然解决起来很便宜。

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