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Analysis and Design of Multiphase Receiver With Reduction of Output Fluctuation for EV Dynamic Wireless Charging System

机译:eV动态无线充电系统输出波动降低的多相接收分析与设计

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The multiphase receiver for more steady output is proposed in this paper. The conventional power supply rail with multipole such as I-type, S-type, and n-type for dynamic wireless charging (DWC) system has a main drawback: the induced voltage of the double-D coil of receiver has a sinusoidal fluctuation along the driving direction and the fluctuation factor is 1.0. Therefore, the multiphase receivers including two-phase, three-phase, and four-phase receiver are proposed to solve the problem. The fluctuation factor, effective value (rms) of induced voltage and mutual inductance, cost, and loss of different numbers of phase in different connection modes are analyzed and compared. The applicable conditions of different types are given. The structure size of single-phase coil is optimized to achieve larger coupling coefficient. The influence of distance between phases on fluctuation factor and induced voltage (rms) are calculated and the design principle of the distance between phases is determined. Based on above research, design guideline for the multiphase receiver is proposed including the constraints of installation environment and the distribution of different phases. The structure size of single-phase coil and the distance between phases are optimized to improve the coupling coefficient and reduce cost, loss, and voltage level of resonator. Considering the practical application environment, a four-phase receiver of 10-kW DWC system is designed. A prototype system is also established and the analysis and simulation are verified. In the dynamic 10-kW experiment, the fluctuation factor is reduced to 0.146 from 0.3 of two-phase receiver and 1.0 of single-phase receiver.
机译:本文提出了用于更稳定输出的多相接收器。具有多极的传统电源导轨,如I型,S型,用于动态无线充电(DWC)系统的N型具有主缺点:接收器的双D线圈的感应电压沿着正弦波动行驶方向和波动因子为1.0。因此,提出了包括两相,三相和四相接收器的多相接收器来解决问题。分析了不同连接模式的诱导电压和互感,成本和不同相位数的不同相位损失的波动因子,有效值(RMS)。给出了不同类型的适用条件。单相线圈的结构尺寸优化以实现更大的耦合系数。计算了相位对波动因子和感应电压(RMS)之间的距离的影响,并且确定了相之间距离的设计原理。基于上述研究,提出了多相接收机的设计指南,包括安装环境的约束和不同阶段的分布。单相线圈的结构尺寸和相之间的距离被优化,以提高耦合系数并降低谐振器的成本,损耗和电压电平。考虑到实际应用环境,设计了10千瓦DWC系统的四相接收器。还建立了原型系统,验证了分析和仿真。在动态10-kW实验中,波动因子从0.3的两相接收器和1.0的单相接接收器减小到0.146。

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