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An Efficient Interface Circuit for Miniature Piezoelectric Energy Harvesting with P-SSHC

机译:具有P-SSHC的微型压电能量收获的高效接口电路

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摘要

A miniature and high-efficiency interface circuit based on parallel synchronous switch harvesting on capacitors (P-SSHC) for piezoelectric energy harvesting (PEH) is proposed in this paper. This interface circuit consists of a two-stage synchronous rectifier and the P-SSHC circuit. The two-stage synchronous rectifier, composed of a negative voltage converter (NVC) and an active diode (AD), achieves higher efficiency compared with the full-bridge rectifier (FBR). In addition, the two-stage synchronous rectifier detects the zero-crossing moment of the input current; therefore, an extra current zero-crossing detection circuit is eliminated, which simplifies the structure of the interface circuit, reduces power consumption and improves peak converting efficiency. The P-SSHC circuit aims to improve the power extraction capability of the rectifier. The P-SSHC achieves considerable voltage flipping efficiency with very small volume compared to the parallel synchronized switch harvesting on inductor (P-SSHI), which is more suitable for volume sensitive applications. The proposed interface circuit is designed in SMIC 0.35 mu m CMOS process. Simulation results show that it achieves a 2.97x output power improvement compared with FBR for the case of a 3.4 V open-circuit voltage, the voltage flipping efficiency is as high as 83.6% and the peak power converting efficiency is up to 91.5%. The overall volume of the capacitors used in this paper is only 0.6 mm(3), which is much smaller than the inductor used by conventional P-SSHI interface circuit.
机译:本文提出了一种基于对电容器(P-SSHC)对电容器(P-SSHC)上的平行同步开关的微型和高效接口电路,用于压电能量收集(PEH)。该接口电路包括两级同步整流器和P-SSHC电路。由负电压转换器(NVC)和有源二极管(AD)组成的两级同步整流器,与全桥式整流器(FBR)相比达到更高的效率。此外,两级同步整流器检测输入电流的过零点;因此,消除了额外的零交叉检测电路,这简化了接口电路的结构,降低了功耗并提高了峰值转换效率。 P-SSHC电路旨在提高整流器的功率提取能力。与电感器(P-SSHI)上的并行同步开关相比,P-SSHC具有非常小的体积,具有非常小的体积,更适合体积敏感应用。所提出的接口电路设计为SMIC 0.35 mu M CMOS工艺。仿真结果表明,与3.4V开路电压的情况相比,它与FBR相比实现了2.97倍的输出功率改进,电压翻转效率高达83.6%,峰值功率转换效率高达91.5%。本文中使用的电容器的总体积仅为0.6毫米(3),远小于传统P-SSHI接口电路使用的电感器。

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