无电大规模集成电路用变容谐振器发电效率分析及基础实验

M. Miyazaki, Hidetoshi Tanaka, G. Ono, T. Nagano, N. Ohkubo, T. Kawahara, K. Yano
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引用次数: 95

摘要

实验证明了一种基于可变谐振电容的振动-电能转换器的发电机。发电机由一个完整的系统组成,包括一个机械可变电容器,一个电荷传输LC槽电路和一个外部供电的定时捕获控制器。一个实用的设计方法,以最大限度地提高效率的振动发电系统。发电机的效率是根据三个因素来估计的:机械能损失、电荷传输损失和时序捕获损失。通过力学-能量分析,找到了共振的最佳条件。电荷传输体中的寄生元件和捕获方案的定时管理决定了发电效率。这些分析使发电系统的优化设计成为可能。实验制造和测量的发电机理论上最大功率为580 nW;测量功率为120nw,转换效率为21%。这是由于43%的机械能损失和63%的电荷输运损失。在实验中,时间捕获方案是人工确定的,外部供电,因此没有考虑其效率。我们的研究结果为普适计算时代探索了一种嵌入式电源的新型系统LSI应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Electric-energy generation using variable-capacitive resonator for power-free LSI: efficiency analysis and fundamental experiment
A power generator based on a vibration-to-electric energy converter using a variable-resonating capacitor is experimentally demonstrated. The generator consists of a complete system with a mechanical variable capacitor, a charge-transporting LC tank circuit and an externally powered timing-capture controller. A practical design methodology to maximize the efficiency of the vibration-to-electric energy generation system is also described. The efficiency of the generator is estimated based on three factors: the mechanical-energy loss, the charge-transportation loss, and the timing-capture loss. Through the mechanical-energy analysis, the optimum condition for the resonance is found. The parasitic elements in the charge transporter and the timing management of the capture scheme dominate the generation efficiency. These analyses enable the optimum design of the energy-generation system. An experimentally fabricated and measured generator theoretically has a maximum power of 580 nW; the measured power is 120 nW, so conversion efficiency is 21%. This results from a 43% mechanical energy loss and a 63% charge-transportation loss. The timing-capture scheme is manually determined and externally powered in the experiment, so its efficiency is not considered. With our result, a new system LSI application with an embedded power source can be explored for the ubiquitous computing era.
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