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采用压电层的悬挂结构的压电能量收集。

Piezoelectric Energy Harvesting from Suspension Structures with Piezoelectric Layers.

机构信息

School of Mechatronic Engineering and Automation, Shanghai University, Shanghai 200444, China.

Shanghai Institute of Intelligent Science and Technology, Tongji University, Shanghai 200092, China.

出版信息

Sensors (Basel). 2020 Jul 4;20(13):3755. doi: 10.3390/s20133755.

Abstract

In this paper, we propose a generator for piezoelectric energy harvesting from suspension structures. This device consists of a leaf spring and eight pairs of piezoelectric layers attached to inner and outer surfaces. We present a special type of leaf spring, which can magnify the force from the workload to allow the piezoelectric layers to achieve larger deformation. The generator is to solve the problem of vibration energy reutilization in a low-frequency vibration system. To verify the efficiency of the proposed configuration, a series of experiments are operated. The results indicate that the resonance frequency (25.2 Hz) obtained from the sweep experiment is close to the simulation result (26.1 Hz). Impedance-matching experiments show that the sum of the output power attains 1.7 mW, and the maximum single layer reaches 0.6 mW with an impedance matching of 610 KΩ, and the instantaneous peak-peak power density is 3.82 mW/cm. The capacitor-charging performance of the generator is also excellent under the series condition. For a 4.7 μF capacitor, the voltage is charged to 25 V in 30 s and limited at 32 V in 80 s. These results demonstrate the exploitable potential of piezoelectric energy harvesting from suspension structures.

摘要

在本文中,我们提出了一种从悬挂结构中获取压电能量的发生器。该设备由一片簧片和八对分别附着在内、外表面的压电层组成。我们提出了一种特殊类型的簧片,它可以放大来自工作负载的力,使压电层实现更大的变形。该发生器旨在解决低频振动系统中振动能量再利用的问题。为了验证所提出配置的效率,进行了一系列实验。结果表明,扫频实验得到的共振频率(25.2 Hz)接近模拟结果(26.1 Hz)。阻抗匹配实验表明,输出功率总和达到 1.7 mW,最大单层达到 0.6 mW,阻抗匹配为 610 KΩ,瞬时峰峰值功率密度为 3.82 mW/cm。在串联条件下,发电机的电容充电性能也非常出色。对于 4.7 μF 的电容器,在 30 s 内可充电至 25 V,并在 80 s 内限制在 32 V。这些结果表明了从悬挂结构中获取压电能量的可开发潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c77b/7374371/873f5ac993c1/sensors-20-03755-g001.jpg

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