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Toward A Fully Integrated Neurostimulator With Inductive Power Recovery Front-End

机译:迈向具有感应功率恢复前端的全集成式神经刺激仪

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In order to investigate new neurostimulation strategies for micturition recovery in spinal cord injured patients, custom implantable stimulators are required to carry-on chronic animal experiments. However, higher integration of the neurostimulator becomes increasingly necessary for miniaturization purposes, power consumption reduction, and for increasing the number of stimulation channels. As a first step towards total integration, we present in this paper the design of a highly-integrated neurostimulator that can be assembled on a 21-mm diameter printed circuit board. The prototype is based on three custom integrated circuits fabricated in High-Voltage (HV) CMOS technology, and a low-power small-scale commercially available FPGA. Using a step-down approach where the inductive voltage is left free up to 20 V, the inductive power and data recovery front-end is fully integrated. In particular, the front-end includes a bridge rectifier, a 20-V voltage limiter, an adjustable series regulator (5 to 12 V), a switched-capacitor step-down DC/DC converter (1:3, 1:2, or 2:3 ratio), as well as data recovery. Measurements show that the DC/DC converter achieves more than 86% power efficiency while providing around 3.9-V from a 12-V input at 1-mA load, 1:3 conversion ratio, and 50-kHz switching frequency. With such efficiency, the proposed step-down inductive power recovery topology is more advantageous than its conventional step-up counterpart. Experimental results confirm good overall functionality of the system.
机译:为了研究脊髓损伤患者排尿恢复的新神经刺激策略,需要定制植入式刺激器来进行慢性动物实验。然而,为了小型化,降低功耗和增加刺激通道的数量,神经刺激器的更高集成度变得越来越必要。作为全面集成的第一步,我们在本文中介绍了一种高度集成的神经刺激器的设计,该器件可以组装在直径为21毫米的印刷电路板上。该原型基于以高压(HV)CMOS技术制造的三个定制集成电路和一个低功耗小型商用FPGA。采用降压方法,电感电压可自由释放高达20 V,从而完全集成了电感功率和数据恢复前端。特别是,前端包括桥式整流器,20 V电压限制器,可调串联稳压器(5至12 V),开关电容器降压DC / DC转换器(1:3、1:2,或2:3的比例),以及数据恢复。测量表明,DC / DC转换器可实现86%以上的电源效率,并在1mA负载,1:3转换比和50kHz开关频率下从12V输入提供约3.9V电压。以这种效率,所提出的降压感应功率恢复拓扑结构比其常规的升压对应结构更具优势。实验结果证实了该系统良好的整体功能。

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