A New Design and Analysis for Metasurface-Based Near-Field Magnetic Wireless Power Transfer for Deep Implants

无线电源传输 比吸收率 电磁线圈 最大功率转移定理 超材料 计算机科学 电感 电磁屏蔽 无线 电子工程 电气工程 拓扑(电路) 功率(物理) 工程类 材料科学 光电子学 物理 电信 电压 量子力学 天线(收音机)
作者
Maoyuan Li,Ali Khaleghi,Aminolah Hasanvand,Ram Prasadh Narayanan,Ilangko Balasingham
出处
期刊:IEEE Transactions on Power Electronics [Institute of Electrical and Electronics Engineers]
卷期号:39 (5): 6442-6454 被引量:6
标识
DOI:10.1109/tpel.2024.3354394
摘要

Wireless power transfer (WPT) is a crucial enabler for the long-term powering of existing implantable medical devices (IMDs). This study proposes a new design and analysis methodology for a tunable metasurface (MTS)-based near-field magnetic wireless power transfer (WPT) system. A near-field magnetic WPT system using a multi-coil topology creates stable power with a low specific absorption rate (SAR). However, maintaining the optimal performance of a system under misalignment conditions continues to be a challenging issue. To address this issue, the proposed design method enables the optimal coupling of the WPT system by tuning the system capacitances at a fixed frequency. Moreover, it is undefined to accurately determine the effective permeability of the MTS in the near-field range. Therefore, based on optimized results, a method is proposed to retrieve effective permeability in near-field scenarios. The effective permeability results are distinct from the typical response of the Lorentz oscillator. As a result, the specific connection between the optimization method and retrieval of effective permeability has been established. The methodology is applied to an exemplified system, where the maximal simulated and measured power transfer efficiencies (PTE) at an implant depth of 8 cm are 2.32% and 2.60%, respectively. Additionally, the planar MTS exhibits a high lateral misalignment tolerance, thereby enabling the development of a reliable WPT system for continuous power supply to IMDs.

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