一种用于压电能量采集的自供电超低功率间歇控制SSHI电路

IF 0.8 4区 工程技术 Q4 ENGINEERING, ELECTRICAL & ELECTRONIC
Guoda Wang, Ping Li, Y. Wen, Z. Luo
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引用次数: 0

摘要

目的现有的压电能量采集控制电路存在启动时间长或功耗高的问题。本文旨在设计一种超低功率控制电路,该电路可以获得几微瓦量级的微弱环境振动能量,为无线传感器等重负载供电。设计/方法/方法提出了一种自供电控制电路,在最大功率点下运行非常短的时间,从而导致低占空比。该电路可以在低输入功率阈值下开始工作,并且可以在冷启动时迅速实现最佳操作条件。该电路设计为能够在没有稳定直流电源的情况下运行,并由压电换能器供电。发现当在具有大的1mF储能电容器的电感器电路上使用串联同步开关收获时,所提出的电路在能量收获方面可以比标准能量收获电路好322%。该控制电路还可以实现0.3的超低功耗 µW,并且能够冷启动,输入功率低至5.78 µW。独创性/价值本文提出的间歇控制策略可以大幅降低控制电路的功耗。在没有专用冷启动模块和直流辅助电源的情况下,如果输入信号大于电压阈值,电路可以在一个输入周期内实现最佳效率。所提出的控制策略特别有利于从自然振动中获取能量,并且对于其他PEH电路来说也是一个很有前途的解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A self-powered ultra-low-power intermittent-control SSHI circuit for piezoelectric energy harvesting
Purpose Existing control circuits for piezoelectric energy harvesting (PEH) suffers from long startup time or high power consumption. This paper aims to design an ultra-low power control circuit that can harvest weak ambient vibrational energy on the order of several microwatts to power heavy loads such as wireless sensors. Design/methodology/approach A self-powered control circuit is proposed, functioning for very brief periods at the maximum power point, resulting in a low duty cycle. The circuit can start to function at low input power thresholds and can promptly achieve optimal operating conditions when cold-starting. The circuit is designed to be able to operate without stable DC power supply and powered by the piezoelectric transducers. Findings When using the series-synchronized switch harvesting on inductor circuit with a large 1 mF energy storage capacitor, the proposed circuit can perform 322% better than the standard energy harvesting circuit in terms of energy harvested. This control circuit can also achieve an ultra-low consumption of 0.3 µW, as well as capable of cold-starting with input power as low as 5.78 µW. Originality/value The intermittent control strategy proposed in this paper can drastically reduce power consumption of the control circuit. Without dedicated cold-start modules and DC auxiliary supply, the circuit can achieve optimal efficiency within one input cycle, if the input signal is larger than voltage threshold. The proposed control strategy is especially favorable for harvesting energy from natural vibrations and can be a promising solution for other PEH circuits as well.
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来源期刊
Circuit World
Circuit World 工程技术-材料科学:综合
CiteScore
2.60
自引率
0.00%
发文量
33
审稿时长
>12 weeks
期刊介绍: Circuit World is a platform for state of the art, technical papers and editorials in the areas of electronics circuit, component, assembly, and product design, manufacture, test, and use, including quality, reliability and safety. The journal comprises the multidisciplinary study of the various theories, methodologies, technologies, processes and applications relating to todays and future electronics. Circuit World provides a comprehensive and authoritative information source for research, application and current awareness purposes. Circuit World covers a broad range of topics, including: • Circuit theory, design methodology, analysis and simulation • Digital, analog, microwave and optoelectronic integrated circuits • Semiconductors, passives, connectors and sensors • Electronic packaging of components, assemblies and products • PCB design technologies and processes (controlled impedance, high-speed PCBs, laminates and lamination, laser processes and drilling, moulded interconnect devices, multilayer boards, optical PCBs, single- and double-sided boards, soldering and solderable finishes) • Design for X (including manufacturability, quality, reliability, maintainability, sustainment, safety, reuse, disposal) • Internet of Things (IoT).
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