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Finite-element-simulation-assisted optimized design of an asymmetrical high-power inductive coupler with a large air gap for EV charging

机译:电动汽车充电用大气隙非对称大功率电感耦合器的有限元仿真辅助优化设计

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Wireless Power Transfer (WPT) has become very popular due to improved safety and convenience provided by the cordless environment. Compared to wireless charging of small electronics, wireless charging of EVs has less variability in distance between transmitter coil (Tx) to receiver coil (Rx). Also, it is highly desirable to minimize the weight and size of Rx mounted on a car, while a larger Tx is employed on the charging platform to provide stronger and/or more uniform magnetic field. Most of the WPT papers for EVs in the literature [1]–[3] describe the realization of inductive couplers using air coils, while some authors use a high-permeability magnetic core [4], [5]. However, a well-defined approach on how to design the coupler is missing. This paper describes how a 3D FES program is used to optimize the coupler. It shows that for a typical design it is preferable to use a ferrite core and suggests how to optimize the core geometry as a function of the air gap.
机译:由于无线环境提供的改进的安全性和便利性,无线电源传输(WPT)已变得非常流行。与小型电子设备的无线充电相比,电动汽车的无线充电在发射器线圈(Tx)与接收器线圈(Rx)之间的距离变化较小。同样,非常希望最小化安装在汽车上的Rx的重量和尺寸,同时在充电平台上采用较大的Tx以提供更强和/或更均匀的磁场。文献[1] – [3]中有关电动汽车的大多数WPT论文都描述了使用空气线圈实现电感耦合器的方法,而另一些作者则使用了高磁导率的磁芯[4],[5]。但是,缺少有关如何设计耦合器的明确定义的方法。本文介绍了如何使用3D FES程序优化耦合器。它表明,对于典型的设计,最好使用铁氧体磁芯,并建议如何根据气隙优化磁芯的几何形状。

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