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Particle Swarm Optimization-Based Parameter Design Method for S/CLC-Compensated IPT Systems Featuring High Tolerance to Misalignment and Load Variation

机译:S / CLC 补偿IPT系统的基于粒子群优化的参数设计方法,对不对准和载荷变化具有较高的耐受性

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摘要

Inductive power transfer (IPT) systems designed with conventional methods offer optimum performance only at specific operational points. These methods are not applicable for dynamic IPT systems where both the coupling and load change throughout the operation. This study proposes a novel particle swarm optimization (PSO)-based parameter design method and aims to obtain a steady output voltage regardless of the coupling and load. The proposed method addresses the constraints of the conventional methods where the compensation capacitors/inductors are designed to resonate with certain other inductors/capacitors at the system's operational frequency. The S/CLC (primary series, secondary capacitor-inductor-capacitor) compensation topology is chosen in this research as it offers many appealing characteristics. The procedure to design an IPT system using the proposed method is presented. Two IPT systems, one designed with the proposed scheme and the other using conventional methods, are theoretically and experimentally compared in terms of fitness, voltage variation ripple (VVR), and power transfer efficiency (PTE). It is demonstrated that the fitness and the VVR of the conventional system are 1400.8% and 372.3% higher than those of the proposed system.
机译:使用常规方法设计的感应功率传输(IPT)系统仅在特定操作点才能提供最佳性能。这些方法不适用于在整个操作过程中耦合和负载都会变化的动态IPT系统。这项研究提出了一种新颖的基于粒子群优化(PSO)的参数设计方法,旨在获得不受耦合和负载影响的稳定输出电压。所提出的方法解决了常规方法的局限性,在常规方法中,补偿电容器/电感器设计为在系统的工作频率下与某些其他电感器/电容器谐振。本研究选择S / CLC(初级串联,次级电容器-电感器-电容器)补偿拓扑,因为它具有许多吸引人的特性。介绍了使用所提出的方法设计IPT系统的过程。从适应性,电压变化纹波(VVR)和功率传输效率(PTE)方面,从理论上和实验上比较了两种IPT系统,一种采用建议的方案设计,另一种采用常规方法。结果表明,常规系统的适应度和VVR分别比拟议系统高1400.8%和372.3%。

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