Design of a Wideband Power-Efficient Inductive Wireless Link for Implantable Biomedical Devices Using Multiple Carriers

S. Atluri, Maysam Ghovanloo
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引用次数: 59

Abstract

This paper presents a novel design for wireless transmission of power and bidirectional data to biomedical implantable microelectronic devices using multiple carrier frequencies. Two separate pairs of coils have been utilized for inductive power and forward data transmission. A back telemetry link is established with a pair of patch antennas in the industrial-scientific-medical (ISM) band. Achieving high power transmission efficiency and high data transmission bandwidth with minimum bit error rate (BER) are the main goals in this application. One of the major challenges is to minimize the interference among carriers especially on the implantable side, where size and power are highly limited. The planar power coils are spiral shaped, and optimized in size to provide maximum coupling coefficient. The data coils are designed rectangular across the power coils diameter and oriented at right angles to the power coils planes to maximize their direct coupling, while minimize their cross-coupling with the power coils. The power, forward data, and back telemetry carriers, which are orders of magnitude different in amplitude, are widely separated in frequency at 125 kHz, 50 MHz, and 2.45 GHz range to further reduce the interference and facilitate filtering. Robust modulation and encoding techniques are currently under development to minimize the effects of interference even further
基于多载波的植入式生物医学设备宽带高能效感应无线链路设计
本文提出了一种利用多载波频率向生物医学植入式微电子设备无线传输电力和双向数据的新设计。两对单独的线圈被用于感应电源和向前数据传输。在工业-科学-医疗(ISM)波段用一对贴片天线建立了一个反向遥测链路。以最小的误码率(BER)实现高功率传输效率和高数据传输带宽是该应用的主要目标。其中一个主要的挑战是尽量减少载体之间的干扰,特别是在尺寸和功率都非常有限的可植入侧。平面功率线圈呈螺旋形,并优化了尺寸以提供最大的耦合系数。数据线圈沿电源线圈直径设计成矩形,并与电源线圈平面成直角,以最大限度地提高其直接耦合,同时最小化其与电源线圈的交叉耦合。功率载波、前向数据载波和后向遥测载波的幅值相差几个数量级,在125 kHz、50 MHz和2.45 GHz的频率范围内被广泛分离,进一步减少干扰,便于滤波。目前正在开发鲁棒调制和编码技术,以进一步减少干扰的影响
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