低切割速度压电MEMS流体能量收集系统

G. E. Biccario, M. Vittorio, S. D'Amico
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引用次数: 5

摘要

从环境振动中收集能量已经成为一种有效的、绿色的电力生产解决方案。特别是,像风这样的流体流动代表了一种稳定而无处不在的能源。传统的液体收割机是基于巨大而笨重的基础设施,如涡轮机,具有很高的环境影响和相当高的切割速度(高于3÷4 m/s)。基于微米尺度的压电器件的换能器已经将这个值降低了大约一个数量级。亚微米尺度纳米结构压电换能器的发展提供了新一代设备,由于其高度的灵活性,能够转换非常慢的流体(速度低于1米/秒)的能量,如人类的呼吸。从这种换能器中收集能量所需的电子接口电路被称为感知功率等于几微瓦或更小的数百毫伏输出信号。必须采用主动架构,即使它们在启动阶段和电力需求方面受到影响。为了利用上述输入功率在几百毫秒内建立电路供电电压,我们建议采用两个存储器件,使接口电路的供电与能量存储解耦。为了采集50mv以下输入波形的所有峰值,提出了一种基于电流传感和交流耦合抑制偏置的检测器。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fluids energy harvesting system with low cut-in velocity piezoelectric MEMS
Energy harvesting from environmental vibrations has established as an effective and green solution for electric energy production. In particular, fluid flows like the wind represent a steady and ubiquitous energy source. Traditional fluids harvesters are based on huge and bulky infrastructures like turbines, with a high environmental impact and a quite high cut-in speed (higher than 3÷4 m/s) for the fluids to be harvested. Transducers based on piezo-electric devices in the micrometric scale have pushed this value down by about one order of magnitude. The development of nanostructured piezo-electric transducers in the submicrometric scale offers a new generation of devices capable of converting the energy of very slow fluids (velocities lower than 1 m/s), like human breath, thanks to their high flexibility. The electronic interface circuit demanded of harvesting the energy from such a transducer is called to sense output signals of hundreds of millivolts with power equal to few microwatts or less. Active architectures must be employed even though they suffer for a start-up phase and the power demand. For building up the circuit supply voltage in few hundreds of milliseconds with the mentioned input power, we propose the employment of two storage devices so that the powering of interface circuit is decoupled from the energy storing. For harvesting all the peaks of the input waveform down to 50 mV, a detector based on current sensing and offset rejection through AC coupling is proposed.
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