School of Electrical Engineering, Tel-Aviv University, Tel-Aviv 69978, Israel.
Ultrasonics. 2010 May;50(6):556-66. doi: 10.1016/j.ultras.2009.11.004. Epub 2009 Nov 26.
This paper investigates ultrasonic transcutaneous energy transfer (UTET) as a method for energizing implanted devices at power level up to a few 100 mW. We propose a continuous wave 673 kHz single frequency operation to power devices implanted up to 40 mm deep subcutaneously. The proposed UTET demonstrated an overall peak power transfer efficiency of 27% at 70 mW output power (rectified DC power at the load). The transducers consisted of PZT plane discs of 15 mm diameter and 1.3mm thick acoustic matching layer made of graphite. The power rectifier on the implant side attained 88.5% power transfer efficiency. The proposed approach is analyzed in detail, with design considerations provided to address issues such as recommended operating frequency range, acoustic link matching, receiver's rectifying electronics, and tissue bio-safety concerns. Global optimization and design considerations for maximum power transfer are presented and verified by means of finite element simulations and experimental results.
本文研究了超声经皮能量传输 (UTET) 作为一种为功率高达数百毫瓦的植入式设备供电的方法。我们提出了一种连续波 673 kHz 单频操作,可对植入深度达 40mm 以下的皮下设备进行供电。所提出的 UTET 在 70mW 输出功率(负载处的整流直流功率)下表现出 27%的整体峰值功率传输效率。换能器由直径为 15mm、厚度为 1.3mm 的 PZT 圆盘和由石墨制成的 1.3mm 厚的声匹配层组成。植入式设备侧的功率整流器实现了 88.5%的功率传输效率。本文对所提出的方法进行了详细分析,并提供了设计注意事项,以解决推荐的工作频率范围、声链路匹配、接收器的整流电子设备以及组织生物安全问题等。通过有限元模拟和实验结果对最大功率传输的全局优化和设计注意事项进行了验证。