Study on the power generation performance of multi-mode piezoelectric–electromagnetic composite energy harvester based on rail vibration absorber

Weiji Qian, Xu Ou, Shengjie Yong, Yan Zheng
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Abstract

With the rapid development in rail transit industry in China, the energy supply of rail monitoring equipment has become a prominent problem, especially in some remote areas. The rail vibration caused by passing trains is a huge energy source. However, due to the characteristics of rail vibration (instantaneous, aperiodic and broadband excitation), the existing rail vibration energy harvesters can only collect rail vibration energy efficiently within a specific frequency range, the energy recovery efficiency is very low. In order to solve these problems, a multi-mode piezoelectric–electromagnetic composite energy harvester based on the rail vibration absorber has been presented in this paper. A model of the wheel–rail–vibration absorber system is established to simulate the rail vibration. In this model, the friction coupling between the wheel and rail has been considered. Under the same structural parameters and operating conditions, the predicted results of this model are consistent with the field-measured results. Base on this wheel–rail–vibration absorber model, numerical simulation analysis of the power generation performance of the composite energy harvester is carried out. The analysis results show that the output power of the multi-mode piezoelectric–electromagnetic composite energy harvester has a total of 6 peaks in the range of 0 to 600 Hz, with a maximum output power of 8.57 mW. Compared to existing vibration energy harvesters, the composite energy harvester has a wider energy harvesting frequency range and higher harvesting efficiency. The parameter analysis results show that the energy harvesting efficiency can be further improved by adjusting the structural parameters or the strain energy of the cantilever beam. This multi-mode piezoelectric–electromagnetic composite energy harvester is beneficial for improving the energy recovery efficiency of rail vibration. It effectively reduces the energy supply costs of the rail monitoring equipment.
基于轨道减振器的多模式压电电磁复合能量收集器的发电性能研究
随着中国轨道交通行业的快速发展,轨道监测设备的能源供应已成为一个突出问题,特别是在一些偏远地区。列车通过时产生的轨道振动是一个巨大的能量来源。然而,由于轨道振动的特性(瞬时、非周期性和宽带激励),现有的轨道振动能量收集器只能在特定频率范围内有效收集轨道振动能量,能量回收效率非常低。为了解决这些问题,本文提出了一种基于轨道振动吸收器的多模压电电磁复合能量收集器。本文建立了一个轮轨振动吸收器系统模型来模拟轨道振动。在该模型中,考虑了车轮与钢轨之间的摩擦耦合。在相同的结构参数和运行条件下,该模型的预测结果与现场测量结果一致。在此轮轨减振器模型的基础上,对复合能量收集器的发电性能进行了数值模拟分析。分析结果表明,多模压电电磁复合能量收集器的输出功率在 0 至 600 Hz 范围内共有 6 个峰值,最大输出功率为 8.57 mW。与现有的振动能量收集器相比,复合能量收集器具有更宽的能量收集频率范围和更高的收集效率。参数分析结果表明,通过调整悬臂梁的结构参数或应变能,可以进一步提高能量收集效率。这种多模压电电磁复合能量收集器有利于提高轨道振动的能量回收效率。它能有效降低轨道监测设备的能源供应成本。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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