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首页> 外文期刊>Journal of intelligent material systems and structures >Performance of galloping piezoelectric energy harvesters
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Performance of galloping piezoelectric energy harvesters

机译:奔腾式压电能量收集器的性能

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摘要

A galloping piezoelectric energy harvester is composed of a cantilevered piezoelectric beam and a tip bluff body. Self-excited vibration is induced when the tip bluff body is subjected to airflow. Then, the piezoelectric materials can convert the mechanical energy into electrical energy. In this article, a coupled aero-electro-mechanical model is developed to analyze a galloping piezoelectric energy harvester. A dimensionless formulation is adopted so that it is very convenient to conduct scaling and performance comparison of different galloping piezoelectric devices. Analytical approximate solution approach is employed to solve these coupled nonlinear equations using the Krylov-Bogoliubov method. Tip bluff body is assumed to have either rectangular or square section. System parameters such as galloping velocity, limit cycle oscillation amplitude, and harvested energy are determined accordingly and presented in an explicit form. Performances of galloping piezoelectric energy harvesters with different tip bluff bodies and electrical loads are characterized. In addition, experimental data are used to validate our predictions with good agreement. The galloping piezoelectric energy harvester having square section shows better performance compared to the one with rectangular section. Furthermore, the performance can be substantially improved by exploring the inherent jump phenomenon as observed in the limit cycle oscillation hysteresis response of a galloping piezoelectric energy harvester with square bluff body.
机译:舞动的压电能量收集器由悬臂式压电梁和尖端钝体组成。当尖端钝体受到气流作用时,会引起自激振动。然后,压电材料可以将机械能转换为电能。在本文中,开发了一种耦合的航空电子机械模型来分析奔腾的压电能量收集器。采用无量纲公式,以便非常方便地进行缩放和不同驰豫压电器件的性能比较。解析近似解法用于使用Krylov-Bogoliubov方法求解这些耦合的非线性方程。笔尖钝体假定具有矩形或正方形截面。相应地确定系统参数(例如,奔腾速度,极限循环振荡幅度和收集的能量)并以明确的形式显示。表征了具有不同尖端钝体和电负载的奔腾压电能量采集器的性能。此外,实验数据还用于很好地验证我们的预测。与具有矩形横截面的压电能量收集器相比,具有正方形横截面的舞动的压电能量收集器显示出更好的性能。此外,可以通过探索固有的跳变现象来显着改善性能,这种现象是在具有方形钝体的疾驰压电能量采集器的极限循环振荡磁滞响应中观察到的。

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