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用于增强微悬臂梁在振动冲击模式下高阶模态响应的合理设计方法。

Rational Design Approach for Enhancing Higher-Mode Response of a Microcantilever in Vibro-Impacting Mode.

作者信息

Migliniene Ieva, Ostasevicius Vytautas, Gaidys Rimvydas, Dauksevicius Rolanas, Janusas Giedrius, Jurenas Vytautas, Krasauskas Povilas

机构信息

Institute of Mechatronics, Kaunas University of Technology, Studentu 56-123, LT-51368 Kaunas, Lithuania.

Faculty of Mechanical Engineering and Design, Kaunas University of Technology, Studentu 56-338, LT-51368 Kaunas, Lithuania.

出版信息

Sensors (Basel). 2017 Dec 12;17(12):2884. doi: 10.3390/s17122884.

Abstract

This paper proposes an approach for designing an efficient vibration energy harvester based on a vibro-impacting piezoelectric microcantilever with a geometric shape that has been rationally modified in accordance with results of dynamic optimization. The design goal is to increase the amplitudes of higher-order vibration modes induced during the vibro-impact response of the piezoelectric transducer, thereby providing a means to improve the energy conversion efficiency and power output. A rational configuration of the energy harvester is proposed and it is demonstrated that the new design retains essential modal characteristics of the optimal microcantilever structures, further providing the added benefit of less costly fabrication. The effects of structural dynamics associated with advantageous exploitation of higher vibration modes are analyzed experimentally by means of laser vibrometry as well as numerically via transient simulations of microcantilever response to random excitation. Electrical characterization results indicate that the proposed harvester outperforms its conventional counterpart (based on the microcantilever of the constant cross-section) in terms of generated electrical output. Reported results may serve for the development of impact-type micropower generators with harvesting performance that is enhanced by virtue of self-excitation of large intensity higher-order mode responses when the piezoelectric transducer is subjected to relatively low-frequency excitation with strongly variable vibration magnitudes.

摘要

本文提出了一种基于振动冲击压电微悬臂梁设计高效振动能量采集器的方法,该微悬臂梁的几何形状已根据动态优化结果进行了合理修改。设计目标是增加压电换能器振动冲击响应过程中诱导产生的高阶振动模式的振幅,从而提供一种提高能量转换效率和功率输出的方法。提出了能量采集器的合理配置,并证明新设计保留了最佳微悬臂梁结构的基本模态特性,进一步带来了制造成本更低的额外好处。通过激光测振实验以及通过微悬臂梁对随机激励响应的瞬态模拟进行数值分析,研究了与有利利用高阶振动模式相关的结构动力学效应。电学特性结果表明,所提出的采集器在产生的电输出方面优于其传统对应物(基于恒定横截面的微悬臂梁)。报告的结果可用于开发冲击型微功率发电机,当压电换能器受到具有强烈变化振动幅度的相对低频激励时,通过大强度高阶模式响应的自激作用提高采集性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6af9/5750779/e154efef28ea/sensors-17-02884-g001.jpg

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