School of Electronics and Information Engineering, Beijing Jiaotong University, Beijing 100044, China.
Sensors (Basel). 2012;12(8):10292-308. doi: 10.3390/s120810292. Epub 2012 Jul 30.
Based on the magnetic resonance coupling principle, in this paper a wireless energy transfer system is designed and implemented for the power supply of micro-implantable medical sensors. The entire system is composed of the in vitro part, including the energy transmitting circuit and resonant transmitter coils, and in vivo part, including the micro resonant receiver coils and signal shaping chip which includes the rectifier module and LDO voltage regulator module. Transmitter and receiver coils are wound by Litz wire, and the diameter of the receiver coils is just 1.9 cm. The energy transfer efficiency of the four-coil system is greatly improved compared to the conventional two-coil system. When the distance between the transmitter coils and the receiver coils is 1.5 cm, the transfer efficiency is 85% at the frequency of 742 kHz. The power transfer efficiency can be optimized by adding magnetic enhanced resonators. The receiving voltage signal is converted to a stable output voltage of 3.3 V and a current of 10 mA at the distance of 2 cm. In addition, the output current varies with changes in the distance. The whole implanted part is packaged with PDMS of excellent biocompatibility and the volume of it is about 1 cm(3).
基于磁共振耦合原理,本文设计并实现了一种用于微植入式医疗传感器的无线能量传输系统。整个系统由体外部分组成,包括能量传输电路和共振发射器线圈,以及体内部分,包括微共振接收器线圈和信号整形芯片,其中包括整流器模块和 LDO 稳压器模块。发射器和接收器线圈由漆包线缠绕而成,接收器线圈的直径仅为 1.9 厘米。与传统的双线圈系统相比,四线圈系统的能量传输效率大大提高。当发射器线圈和接收器线圈之间的距离为 1.5 厘米时,在 742 kHz 的频率下,传输效率为 85%。通过添加磁增强谐振器,可以优化功率传输效率。接收电压信号转换为稳定的 3.3 V 输出电压和 10 mA 的电流,距离为 2 厘米。此外,输出电流随距离的变化而变化。整个植入部分用具有优异生物相容性的 PDMS 进行封装,其体积约为 1 cm(3)。