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An Efficiency Optimization-Based Asymmetric Tuning Method of Double-Sided LCC Compensated WPT System for Electric Vehicles

机译:基于效率优化的电动汽车双面LCC补偿WPT系统的不对称调谐方法

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摘要

Compensation topologies play an essential role in wireless power transfer systems for electric vehicles. Specifically, the double-sided LCC compensated (DS-LCC) topology has been widely adopted, owing to its inherent advantages, such as load-independent constant current (CC) output, low sensitivity to load variation, and high freedom in parameter design. However, large resonant devices in the DS-LCC topology lower the system efficiency and increase the complexity of optimal parameter tuning. Therefore, in this article, the parameters of the DS-LCC compensation topology are reconfigured by adjusting the ratios of its two compensation inductances without changing the specified system-level parameters, such as the loosely coupled transformer, operating frequency, and specified CC outputs. The system performance under each case is analyzed and compared in detail, based on which, an asymmetric parameter-design method is proposed to optimize the system efficiency. To verify the reasonability of the proposed tuning method, a 6.6-kW experimental prototype is configured, and comparative experiments are conducted. The experimental results indicate that, compared with the conventional method, the proposed parameter-tuning method improves the system efficiency under overall load conditions, especially under light loads.
机译:补偿拓扑在电动汽车的无线电力传输系统中起着重要作用。具体而言,由于其固有的优点,如其固有的优点,如此的具有固有的优点,如此,如此,如此,诸如负载无关的恒流(CC)输出,对负载变化的低灵敏度以及参数设计中的高自由度,具有广泛采用的双面LCC补偿(DS-LCC)拓扑。然而,DS-LCC拓扑中的大谐振装置降低了系统效率并提高了最佳参数调谐的复杂性。因此,在本文中,通过调整其两个补偿电感的比率来重新配置DS-LCC补偿拓扑的参数,而不改变指定的系统级参数,例如松散耦合的变压器,工作频率和指定的CC输出。基于此基础,详细分析了每个情况下的系统性能,提出了不对称参数设计方法来优化系统效率。为了验证所提出的调谐方法的合理性,配置了6.6kW的实验原型,并进行比较实验。实验结果表明,与传统方法相比,所提出的参数调谐方法在整体负载条件下提高了系统效率,尤其是在轻负载下。

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