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Multi-objective optimisation of a 1-kW wireless IPT systems for charging of electric vehicles

机译:用于电动汽车充电的1-KW无线IPT系统的多目标优化

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Inductive power transfer (IPT) systems for on-road dynamic charging of electric vehicles (EVs) must employ tracks with minimal copper and ferrite core material for improving coupling and field shaping without sacrificing on power transfer efficiency across the air gap. This paper details the multi-objective optimisation of IPT coil systems with respect to efficiency of power transfer (η), material weight or cost (w), and area-power density (α) as required in EV applications. A combination of detailed analytical calculations and experimentally verified 3D finite element models is used to analyse performance of IPT systems with polarized coupler topology [referred to as double D(DD) coils], I-shaped ferrite cores for field shaping and aluminium plates to reduce stray or leakage magnetic fields. An multi-objective pareto optimisation using Particle Swarm algorithm of a scaled 1kW prototype system with a 15 cm airgap is presented.
机译:电动汽车的通道动态充电(EVS)的电感电力传输(IPT)系统必须采用最小铜和铁氧体芯材的轨道,用于改善耦合和场成形,而不牺牲空气间隙的功率传递效率。本文详细介绍了IPT线圈系统的多目标优化,相对于电力传输(η),材料重量或成本(W),以及根据EV应用所需的面积功率密度(α)的多目标优化。详细分析计算和实验验证的3D有限元模型的组合用于分析具有极化耦合器拓扑的IPT系统的性能[称为双D(DD)线圈],I形铁氧体芯,用于降低铝板和铝板流浪或泄漏磁场。呈现了使用带15cm气隙的尺寸1kW原型系统的粒子群算法的多目标帕累托优化。

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