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首页> 外文期刊>Microwaves, Antennas & Propagation, IET >Dual-objective control strategy for maximum power and efficiency point tracking in wirelessly powered biomedical implanted devices
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Dual-objective control strategy for maximum power and efficiency point tracking in wirelessly powered biomedical implanted devices

机译:双目标控制策略可在无线生物医学植入设备中实现最大功率和效率点跟踪

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摘要

Wireless charging is widely considered as a safe and reliable way for powering biomedical implants, as it avoids problems like surgical infection. Wireless power transfer (WPT) systems are desired to work efficiently against variations in coil-coil distance or output load. On the other hand, to maintain the maximum overall efficiency of the WPT system, the high frequency (HF) power amplifier, used to feed WPT system, must operate at optimal zero-voltage switching (ZVS) condition. In this paper, an automated dual-objective control strategy adaptive to variations in coil-coil distance or output load is proposed which ensures both targets of tracking maximum power point and operating at optimal ZVS condition by adjusting operating frequency and duty-cycle of switching voltage of HF power amplifier, respectively; that is while there have been few studies which have addressed both the two targets. To evaluate the effectiveness of the proposed strategy, a PCB prototype, operating at 800 kHz, is fabricated. Experimental results, demonstrating the proposed strategy increases transferred power from 23 mW to about 45 mW, are in good agreement with theoretical predictions. Additionally, while implanting the receiver coil in a real biological tissue, experiments show only 2% of degradation in power transfer efficiency as well as no frequency shift.
机译:无线充电被广泛认为是为生物医学植入物供电的一种安全可靠的方法,因为它避免了诸如外科手术感染之类的问题。希望无线电力传输(WPT)系统能够有效地应对线圈线圈距离或输出负载的变化。另一方面,为了保持WPT系统的最大整体效率,用于向WPT系统供电的高频(HF)功率放大器必须在最佳零电压开关(ZVS)条件下运行。本文提出了一种自动双目标控制策略,该策略可适应线圈-线圈距离或输出负载的变化,通过调整工作频率和开关电压的占空比,确保跟踪最大功率点和在最佳ZVS条件下工作的目标分别是高频功率放大器;然而,很少有研究能够同时解决这两个目标。为了评估所提出策略的有效性,制造了工作于800 kHz的PCB原型。实验结果证明了所提出的策略将传输功率从23 mW提高到了约45 mW,与理论预测非常吻合。此外,在将接收器线圈植入真实的生物组织中时,实验表明,只有2%的功率传输效率下降,并且没有频移。

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