Determining Relation Between Size of Polarized Inductive Couplers and Nominal Airgap

S. Bandyopadhyay, Jianning Dong, L. Ramirez-Elizondo, P. Bauer
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引用次数: 1

Abstract

Inductive power transfer (IPT) is gaining popularity across a wide range of battery charging applications like biomedical, consumer electronics and electric vehicle (EV) charging. One of the major challenges in designing IPT charge pads is determining the optimal physical sizes of the magnetic couplers resulting in efficient power transfer and low cost of materials. In EV applications, it is especially difficult due to the variation in nominal air gap, required power levels associated with different vehicle classes, and charging locations that may be encountered. This paper aims to determine the relationship between optimal coupler sizes and the nominal air gap of an IPT system. Finite element analysis (FEA) is used to model the electromagnetic behavior of the magnetic couplers. A multi-objective optimization framework is built to reveal the Pareto fronts which show the trade-offs between the power transfer efficiencies and the coupler power densities at different air gaps. This method is applied on polarized double-D (DD) couplers for a 5 kW IPT system at different air gaps. Analyzing the power densities of the Pareto Optimal designs an approximate relation between optimal pad sizes and the air gap is derived. Results show that there is an exponential relationship between the optimal coupler sizes and the nominal air gap.
确定极化电感耦合器尺寸与标称气隙的关系
感应功率传输(IPT)在生物医学、消费电子和电动汽车(EV)充电等广泛的电池充电应用中越来越受欢迎。设计IPT充电垫的主要挑战之一是确定磁耦合器的最佳物理尺寸,从而实现高效的功率传输和低成本的材料。在电动汽车应用中,由于标称气隙的变化、与不同车辆类别相关的所需功率水平以及可能遇到的充电位置,这一点尤其困难。本文旨在确定IPT系统的最佳耦合器尺寸与标称气隙之间的关系。采用有限元分析(FEA)对磁力耦合器的电磁特性进行了建模。建立了一个多目标优化框架,揭示了在不同气隙下功率传输效率和耦合器功率密度之间的权衡的帕累托前沿。将该方法应用于不同气隙下5kw IPT系统的极化双d (DD)耦合器。分析了帕累托最优设计的功率密度,导出了最优衬垫尺寸与气隙之间的近似关系。结果表明,最佳耦合器尺寸与标称气隙之间呈指数关系。
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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