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Switching Delay in Self-Powered Nonlinear Piezoelectric Vibration Energy Harvesting Circuit: Mechanisms, Effects, and Solutions

机译:自供电非线性压电振动能量采集电路中的开关延迟:机理,作用和解决方案

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Piezoelectric vibration energy harvesting (PVEH) has been proved to be much promising in making low power electronics completely self-powered due to wide availability and high energy density. Self-powered synchronized switching harvesting on an inductor (SSHI) circuits have been proved to greatly increase the performance of a PVEH device and peak detector-based self-powered switches are widely used. In practice, however, the switch is impossible to turn ON simultaneously at peak displacements due to nonlinear components so that switching delay (SD) always exists. Furthermore, the SD will degrade the performance of PVEH devices, so it must be reduced. Therefore, for this kind of SSHI circuits, the purpose of this paper is to explore basic causes of generating SD and investigate the corresponding solution. First, theoretical model of SD in self-powered parallel SSHI (SP-PSSHI) is derived and the SD is first proved to be positive. Then, effects of key component parameters on the SD are studied. Based on above results, an improved SP-PSSHI (ISP-PSSHI) circuit is proposed by adding a voltage divider and its SD is proved to be less than that of the SP-PSSHI circuit. Next, the key factor is discussed, namely the divider resistor. Circuit simulations validate theoretical results and also expose that there are optimal resistor and capacitor of the envelope detector for achieving the maximum harvested power. In the end, experimental results show that the ISP-PSSHI circuit can improve the averaged harvested power about 11% more than that of the SP-PSSHI circuit under choosing optimal components.
机译:压电振动能量收集(PVEH)由于具有广泛的可用性和高能量密度,已被证明在使低功率电子设备完全自供电方面非常有前途。事实证明,电感器(SSHI)电路上的自供电同步开关采集可以大大提高PVEH器件的性能,并且基于峰值检测器的自供电开关也得到了广泛使用。然而,实际上,由于非线性分量,开关不可能在峰值位移处同时导通,因此始终存在开关延迟(SD)。此外,SD将降低PVEH设备的性能,因此必须降低它。因此,对于这种SSHI电路,本文的目的是探究产生SD的基本原因并研究相应的解决方案。首先,推导自供电并联SSHI(SD-PSSHI)中SD的理论模型,并首先证明SD是正的。然后,研究了关键部件参数对SD的影响。基于以上结果,提出了一种改进的SP-PSSHI(ISP-PSSHI)电路,增加了一个分压器,并证明其SD小于SP-PSSHI电路。接下来,讨论关键因素,即分压电阻。电路仿真验证了理论结果,并且还揭示了包络检波器具有最佳电阻和电容,可实现最大的采集功率。最后,实验结果表明,在选择最佳元件的情况下,ISP-PSSHI电路的平均收获功率比SP-PSSHI电路提高了约11%。

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