Optimal Coil Design for Maximum Power Transfer Efficiency in Resonantly Coupled Systems

Maryam Heidarian, S. Burgess, R. Prabhu, Nazila Fough
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引用次数: 2

Abstract

Maintaining maximum power transfer efficiency (PTE) is one of the main challenges in resonant inductive power transfer (IPT) systems. Maximum PTE can be achieved if the coupling between transmitter and receiver coils is strong. One way of achieving this is to geometrically optimise a coil by employing small ohmic resistance combined with high self-inductance. In this paper a design method for an optimum coil geometry which offers maximum PTE has been introduced. The proposed technique, in addition to minimising the system’s physical size, provides high level of PTE for both strongly- and loosely-coupled links. A design example for a typical IPT system is presented that shows, with a proper selection of strong coupling factor (e.g.: C = 220.), the designed coil geometry can provide maximum PTE of 95.4% for coupling coefficient K = 1. Also, for a loose inductive link with K = 0.215, maximum calculated and measured PTE values are 89% and 86%, respectively.
共振耦合系统中最大功率传输效率的优化线圈设计
保持最大功率传输效率(PTE)是谐振感应功率传输(IPT)系统的主要挑战之一。如果发射线圈和接收线圈之间的耦合较强,则可以实现最大的PTE。实现这一目标的一种方法是通过采用小欧姆电阻结合高自感,在几何上优化线圈。本文介绍了一种能提供最大PTE的最佳线圈几何形状的设计方法。所提出的技术,除了最小化系统的物理尺寸外,还为强耦合和松耦合链路提供了高水平的PTE。最后给出了典型IPT系统的设计实例,结果表明,当耦合系数K = 1时,适当选择强耦合系数C = 220时,所设计的线圈几何形状可提供95.4%的最大PTE。对于K = 0.215的松散电感链路,最大PTE计算值和测量值分别为89%和86%。
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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