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Segmentation of a vibro-shock cantilever-type piezoelectric energy harvester operating in higher transverse vibration modes

机译:在较高的横向振动模式下运行的振动冲击悬臂式压电能量采集器的分段

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摘要

The piezoelectric transduction mechanism is a common vibration-to-electric energy harvesting approach. Piezoelectric energy harvesters are typically mounted on a vibrating host structure, whereby alternating voltage output is generated by a dynamic strain field. A design target in this case is to match the natural frequency of the harvester to the ambient excitation frequency for the device to operate in resonance mode, thus significantly increasing vibration amplitudes and, as a result, energy output. Other fundamental vibration modes have strain nodes, where the dynamic strain field changes sign in the direction of the cantilever length. The paper reports on a dimensionless numerical transient analysis of a cantilever of a constant cross-section and an optimally-shaped cantilever with the objective to accurately predict the position of a strain node. Total effective strain produced by both cantilevers segmented at the strain node is calculated via transient analysis and compared to the strain output produced by the cantilevers segmented at strain nodes obtained from modal analysis, demonstrating a 7% increase in energy output. Theoretical results were experimentally verified by using open-circuit voltage values measured for the cantilevers segmented at optimal and suboptimal segmentation lines.
机译:压电换能机制是一种常见的振动至电能收集方法。压电能量收集器通常安装在振动的主机结构上,从而通过动态应变场生成交流电压输出。在这种情况下,设计目标是使收割机的固有频率与环境激发频率匹配,以使设备以共振模式运行,从而显着增加振动幅度,从而增加能量输出。其他基本振动模式具有应变节点,其中动态应变场沿悬臂长度方向改变符号。本文报道了一个恒定截面的悬臂和一个最佳形状的悬臂的无量纲数值瞬态分析,目的是准确预测应变节点的位置。通过瞬态分析计算由两个悬臂在应变节点处分段产生的总有效应变,并将其与由模态分析获得的由在应变节点处分段的悬臂产生的应变输出进行比较,证明能量输出增加了7%。理论结果通过使用在最佳分割线和次佳分割线处分割的悬臂的开路电压值进行实验验证。

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