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A Wide-Band Power-Efficient Inductive Wireless Link for Implantable Microelectronic Devices Using Multiple Carriers

机译:使用多个载波的可植入微电子设备的宽带高效感应无线链路

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This paper presents a novel inductive link for wireless transmission of power and data to biomedical implantable microelectronic devices using multiple carrier signals. Achieving higher data bandwidth without compromising the power efficiency is the driving force behind using multiple separate carriers. Two separate pairs of coils have been utilized for inductive power and forward data transmission, plus a pair of miniature antennas for back telemetry. One major challenge, however, is to minimize the interference among these carriers especially on the implantable side, where size and power are highly limited. Planar power coils with spiral shape are optimized in geometry to provide maximum coupling coefficient k. The data coils are designed rectangular in shape and wound across the power coils diameter to be oriented perpendicular to the power coil planes. The goal is to maximize data coils direct coupling, while minimize their cross-coupling with the power coils. The effects of coils geometry, orientation, relative distance, and misalignments on the coupling coefficients have been modeled and experimentally evaluated.
机译:本文提出了一种新颖的感应链路,用于使用多个载波信号将功率和数据无线传输到生物医学植入式微电子设备。在不牺牲功率效率的情况下获得更高的数据带宽是使用多个独立载波的背后驱动力。两对独立的线圈已用于感应功率和前向数据传输,另外还有一对微型天线用于后向遥测。然而,主要的挑战是使这些载体之间的干扰最小化,尤其是在尺寸和功率受到严格限制的可植入侧上。具有螺旋形状的平面功率线圈的几何形状经过优化,可提供最大的耦合系数k。数据线圈的形状设计为矩形,并缠绕在功率线圈直径上,以垂直于功率线圈平面定向。目的是使数据线圈直接耦合最大化,同时使它们与功率线圈的交叉耦合最小。线圈的几何形状,方向,相对距离和未对准对耦合系数的影响已被建模并进行了实验评估。

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