3D electromagnetic analytical model for radial-flux eddy-current couplers

COMPEL Pub Date : 2024-04-25 DOI:10.1108/compel-11-2023-0558
Mohammed Messadi, Larbi Hadjout, Noureddine Takorabet
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Abstract

Purpose

This paper aims to develop a new 3D analytical model in cylindrical coordinates to study radial flux eddy current couplers (RFECC) while considering the magnetic edge and 3D curvature effects, and the field reaction due to the induced currents.

Design/methodology/approach

The analytical model is developed by combining two formulations. A magnetic scalar potential formulation in the air and the magnets regions and a current density formulation in the conductive region. The magnetic field and eddy currents expressions are obtained by solving the 3D Maxwell equations in 3D cylindrical coordinates with the variable separation method. The torque expression is derived from the field solution using the Maxwell stress tensor. In addition to 3D magnetic edge effects, the proposed model takes into account the reaction field effect due to the induced currents in the conducting part. To show the accuracy of the developed 3D analytical model, its results are compared to those from the 3D finite element simulation.

Findings

The obtained results prove the accuracy of the new developed 3D analytical model. The comparison of the 3D analytical model with the 2D simulation proves the strong magnetic edge effects impact (in the axial direction) in these devices which must be considered in the modelling. The new analytical model allows the magnetic edge effects consideration without any correction factor and also presents a good compromise between precision and computation time.

Practical implications

The proposed 3D analytical model presents a considerably reduced computation time compared to 3D finite element simulation which makes it efficient as an accurate design and optimization tool for radial flux eddy current devices.

Originality/value

A new analytical model in 3D cylindrical coordinates has been developed to find the electromagnetic torque in radial flux eddy current couplers. This model considers the magnetic edge effects, the 3D curvature effects and the field reaction (without correction factors) while improving the computation time.

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径向通量涡流耦合器的三维电磁分析模型
目的 本文旨在开发一种新的圆柱坐标三维分析模型,以研究径向磁通涡流耦合器(RFECC),同时考虑磁边缘和三维曲率效应,以及感应电流引起的场反应。空气和磁体区域的磁标量势公式和导电区域的电流密度公式。磁场和涡流表达式是通过在三维圆柱坐标中使用变量分离法求解三维麦克斯韦方程得到的。扭矩表达式是利用麦克斯韦应力张量从磁场求解中导出的。除了三维磁边缘效应外,所提出的模型还考虑了导电部分感应电流引起的反作用力场效应。为了显示所开发的三维分析模型的准确性,我们将其结果与三维有限元模拟的结果进行了比较。三维分析模型与二维模拟结果的对比证明,这些器件具有强烈的磁边缘效应影响(轴向),必须在建模时加以考虑。新的分析模型无需任何校正因子即可考虑磁边缘效应,并在精度和计算时间之间实现了良好的折衷。实用意义与三维有限元仿真相比,所提出的三维分析模型大大缩短了计算时间,使其成为径向磁通涡流装置的有效精确设计和优化工具。原创性/价值开发了一种新的三维圆柱坐标分析模型,用于计算径向磁通涡流耦合器中的电磁扭矩。该模型考虑了磁边缘效应、三维曲率效应和磁场反作用力(不含修正系数),同时改进了计算时间。
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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