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首页> 外文期刊>Proceedings of the IEEE >Electrical Circuit Model and Dynamic Analysis of Implantable Enzymatic Biofuel Cells Operating In Vivo
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Electrical Circuit Model and Dynamic Analysis of Implantable Enzymatic Biofuel Cells Operating In Vivo

机译:体内运行的可植入酶促生物燃料电池的电路模型和动态分析

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摘要

This paper presents an electric circuit model and a dynamic analysis of enzymatic biofuel cells. The model is consistent with classical double-layer capacitance electrode behavior, fuel cell polarization models, and fuel diffusion limits, and may be extracted from commonly used electrochemical measurements. It is shown to accurately predict the observed experimental behavior of implantable enzymatic biofuel cells operating . The model is analyzed under various power loading conditions to consider runtime and fuel replenishment implications. A case study for powering a pacemaker is considered; and the results and SPICE simulations are shown to be in excellent agreement with experimental observations. The model can be used to identify areas for future biofuel cell improvement and to provide insight into critical electrical interface and system-level issues that must be addressed to advance the adoption of application of biofuel cells.
机译:本文介绍了酶促生物燃料电池的电路模型和动态分析。该模型与经典的双层电容电极行为,燃料电池极化模型和燃料扩散极限一致,并且可以从常用的电化学测量中提取。它被证明可以准确预测植入式酶生物燃料电池的实验行为。在各种功率负载条件下分析该模型,以考虑运行时间和燃料补给的影响。考虑了为起搏器供电的案例研究;结果表明,SPICE仿真与实验观察结果非常吻合。该模型可用于确定未来生物燃料电池改进的领域,并提供对关键电气接口和系统级问题的洞察力,这些问题必须加以解决才能促进生物燃料电池应用的采用。

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