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Maximum Achievable Efficiency in Near-Field Coupled Power-Transfer Systems

机译:近场耦合电力传输系统中的最大可实现效率

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摘要

Wireless power transfer is commonly realized by means of near-field inductive coupling and is critical to many existing and emerging applications in biomedical engineering. This paper presents a closed form analytical solution for the optimum load that achieves the maximum possible power efficiency under arbitrary input impedance conditions based on the general two-port parameters of the network. The two-port approach allows one to predict the power transfer efficiency at any frequency, any type of coil geometry and through any type of media surrounding the coils. Moreover, the results are applicable to any form of passive power transfer such as provided by inductive or capacitive coupling. Our results generalize several well-known special cases. The formulation allows the design of an optimized wireless power transfer link through biological media using readily available EM simulation software. The proposed method effectively decouples the design of the inductive coupling two-port from the problem of loading and power amplifier design. Several case studies are provided for typical applications.
机译:无线功率传输通常通过近场电感耦合来实现,并且对于生物医学工程中许多现有和新兴的应用至关重要。本文针对网络的一般两端口参数,在任意输入阻抗条件下为最佳负载提供了一种闭合形式的解析解决方案,以实现最大可能的功率效率。两端口方法可以预测任何频率,任何类型的线圈几何形状以及通过线圈周围的任何类型介质的功率传输效率。而且,该结果适用于任何形式的无源功率传输,例如电感或电容耦合。我们的结果归纳了几种著名的特殊情况。该公式允许使用现成的EM仿真软件通过生物介质设计优化的无线电力传输链路。所提出的方法有效地将电感耦合两端口的设计与负载和功率放大器设计的问题脱钩。提供了一些针对典型应用的案例研究。

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