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Design and Optimization of Printed Spiral Coils for Efficient Transcutaneous Inductive Power Transmission

机译:高效经皮感应电力传输印刷螺旋线圈的设计与优化

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The next generation of implantable high-power neuroprosthetic devices such as visual prostheses and brain computer interfaces are going to be powered by transcutaneous inductive power links formed between a pair of printed spiral coils (PSC) that are batch-fabricated using micromachining technology. Optimizing the power efficiency of the wireless link is imperative to minimize the size of the external energy source, heating dissipation in the tissue, and interference with other devices. Previous design methodologies for coils made of 1-D filaments are not comprehensive and accurate enough to consider all geometrical aspects of PSCs with planar 3-D conductors as well as design constraints imposed by implantable device application and fabrication technology. We have outlined the theoretical foundation of optimal power transmission efficiency in an inductive link, and combined it with semi-empirical models to predict parasitic components in PSCs. We have used this foundation to devise an iterative PSC design methodology that starts with a set of realistic design constraints and ends with the optimal PSC pair geometries. We have executed this procedure on two design examples at 1 and 5 MHz achieving power transmission efficiencies of 41.2% and 85.8%, respectively, at 10-mm spacing. All results are verified with simulations using a commercial field solver (HFSS) as well as measurements using PSCs fabricated on printed circuit boards.
机译:下一代可植入的大功率神经假体设备(例如视觉假体和脑计算机接口)将由在使用微加工技术批量制造的一对印刷螺旋线圈(PSC)之间形成的经皮感应电源链路供电。必须使无线链路的功率效率最优化,以最小化外部能源的大小,组织中的热耗散以及对其他设备的干扰。以前由一维细丝制成的线圈的设计方法不够全面和准确,无法考虑具有平面3-D导体的PSC的所有几何方面,以及可植入设备应用和制造技术所施加的设计约束。我们概述了感应链路中最佳输电效率的理论基础,并将其与半经验模型相结合以预测PSC中的寄生成分。我们利用这一基础来设计一种迭代的PSC设计方法,该方法从一组实际的设计约束开始,以最佳的PSC对几何形状结束。我们已经在两个设计实例上以1 MHz和5 MHz执行了该程序,在10mm的间距下,分别达到41.2%和85.8%的功率传输效率。使用商用现场求解器(HFSS)进行的仿真以及使用在印刷电路板上制造的PSC进行的测量,均可以验证所有结果。

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