Physics-based FE model and analytical verification of bi-directional inductive wireless power transfer system

A. Mohamed, A. Berzoy, O. Mohammed
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引用次数: 11

Abstract

Accurate and efficient models can assist designers to predict and optimize the system performance during system development. This paper presents a physics-based 2-D finite-element model (FEM) for bidirectional inductive wireless power transfer system (BIWPTS) for electric vehicle (EV) applications. The proposed model is based on a co-simulation platform developed through the coupling between Finite Element (FE) and circuit modeling. A steady-state analytical model for the same system was developed and implemented in MatLab environment. A 0.5 kW BIWPTS was analyzed based on the two models and the results were compared. Less than 0.5% normalized mean square (NMSE) current error shows that the numerical models were able to predict the system performance accurately. These models can be easily extended to other magnetic designs, compensation and inverter topologies.
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双向感应无线电力传输系统的物理有限元模型及分析验证
准确有效的模型可以帮助设计人员在系统开发过程中预测和优化系统性能。提出了一种基于物理的电动汽车双向感应无线电力传输系统(BIWPTS)的二维有限元模型。提出的模型是基于一个联合仿真平台,通过有限元(FE)和电路建模之间的耦合开发的。在MatLab环境下开发并实现了该系统的稳态分析模型。在此基础上对一个0.5 kW BIWPTS进行了分析,并对结果进行了比较。归一化均方(NMSE)电流误差小于0.5%,表明该数值模型能够准确预测系统性能。这些模型可以很容易地扩展到其他磁性设计,补偿和逆变器拓扑结构。
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