Ultrasound transducer optimization for wireless battery charging in subcutaneous implantable device

T. Hoang, B. Rosinski, N. Felix
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Abstract

Wireless power transfer (WPT) is a promising way to power active implantable medical devices (AIMDs) which are increasingly used in modern life to monitor and/or treat diseases such as cardiovascular diseases which are the cause of about 1/3 of global deaths according to the WHO. In the last decade, among WPT technologies like optical, radio frequency or inductive coupling, acoustic power transfer (APT) has received great interest thank to its advantages in terms of efficiency, miniaturization, deep propagation, and electromagnetic compatibility. Designing an efficient implantable ultrasound (US) receiver requires appropriate material selection considerations. This study presents for the first time a benchmark of piezoelectric materials and their important parameters in the aim of optimizing the performance of US receiver for wireless battery charging in subcutaneous implantable device. Simulation and experimental results reveal that hard ceramics with high mechanical quality factor are the most suitable for making an efficient US receiver. APT measurement demonstrates that the US receiver provided a maximum of 3.7 mA charging current at a depth of 20 mm through silicone medium from an ultrasound beam with an acoustic intensity of 81 mW/cm2.
用于皮下植入装置无线充电的超声换能器优化
无线电力传输(WPT)是一种很有前途的方式,为有源植入式医疗设备(aimd)供电,这些设备在现代生活中越来越多地用于监测和/或治疗心血管疾病等疾病,据世界卫生组织称,心血管疾病是全球约三分之一的死亡原因。近十年来,在光、射频或电感耦合等WPT技术中,声功率传输(APT)因其在效率、小型化、深度传播和电磁兼容性等方面的优势而备受关注。设计一个有效的植入式超声接收器需要考虑适当的材料选择。本研究首次提出了压电材料及其重要参数的基准,旨在优化用于皮下植入装置无线充电的US接收器的性能。仿真和实验结果表明,机械质量系数高的硬陶瓷最适合制作高效的US接收器。APT测量表明,美国接收器从声强为81 mW/cm2的超声光束中通过硅树脂介质,在深度为20 mm处提供了最大3.7 mA的充电电流。
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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