A Misalignment Adaptive WPT System Ensuring Maximum Power Transfer under Asymmetric Frequency Splitting Conditions

S. Sezen, F. Kılıç
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引用次数: 1

Abstract

One of the major issues is that the output power and power transfer efficiency are dependent on the coupling coefficient (k) between the magnetic couplers. Any deviations in optimal distance, misalignment between the couplers or un-modeled dynamics such as temperature dependent variation in components lead to a shift in system’s resonance frequency. Also, asymmetric frequency splitting phenomenon occurs decreasing the output power and the power transfer efficiency of the system. Non-metaheuristic optimization methods are not capable of distinguishing the global maximum power (GMP) transfer frequency under frequency splitting conditions. This study presents an adaptive wireless power transfer (WPT) system with a Cuckoo Search Algorithm (CSA) based frequency-tracking method. GMP transfer frequencies determined by experimental frequency scanning method. The method is implemented under asymmetric splitting conditions for the first time. The suitability of the algorithm is tested in an experimental WPT setup. In experimental studies, wireless power transfer was provided through flux pipe couplers with three sub-coils which exhibit higher coupling coefficient as compared to traditional flux pipe couplers with two sub-coils. Results show that the CSA based controller can accurately find the optimal operation frequency under various misalignment and distance between the couplers.
非对称分频条件下保证最大功率传输的失调自适应WPT系统
其中一个主要问题是输出功率和功率传输效率取决于磁耦合器之间的耦合系数(k)。任何在最佳距离上的偏差,耦合器之间的不对准或未建模的动力学,如元件的温度依赖变化,都会导致系统谐振频率的变化。同时,存在非对称分频现象,降低了系统的输出功率和功率传输效率。在分频条件下,非元启发式优化方法无法区分全局最大功率(GMP)传递频率。提出了一种基于布谷鸟搜索算法(CSA)的频率跟踪自适应无线电力传输系统。GMP传递频率采用实验扫频法确定。该方法首次在非对称分裂条件下实现。在实验WPT设置中测试了该算法的适用性。在实验研究中,无线电力传输通过带有三个子线圈的磁链管耦合器实现,与传统的带有两个子线圈的磁链管耦合器相比,具有更高的耦合系数。结果表明,基于CSA的控制器可以在各种不对准和耦合器之间的距离下准确地找到最优工作频率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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