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一种基于偏置自夹紧机构的谐振单翼仿生压电电机。

A resonant single-wing bionic piezoelectric motor based on a biasing self-clamping mechanism.

作者信息

He Liangguo, Qian An, Dong Yuge, Li Xinyu, Wan Zhikai, Yue Xukang

机构信息

School of Mechanical Engineering, Hefei University of Technology, Hefei, Anhui 230009, China.

出版信息

Rev Sci Instrum. 2023 Jun 1;94(6). doi: 10.1063/5.0139589.

Abstract

In this study, a resonant single-wing bionic piezoelectric motor based on a biasing self-clamping mechanism inspired by dragonfly flight was designed, assembled, and tested. The main mechanism of the designed piezoelectric motor includes a mover (including a vibrator, clamping foot, bionic pedestal, etc.), a stator, and other auxiliary components. The clamping foot of the mover contacts the side of the stator to form a biasing self-clamping mechanism, which can achieve a clamping effect within half a cycle of the vibrator's resonant vibration. The piezoelectric plate on the vibrator receives a single harmonic excitation from the signal generator, causing the base plate to bend and distort. The base plate drives the clamping foot to move regularly, causing the mover to perform a linear motion. Moreover, repeated single harmonic excitations can realize the continuous movement of the mover. The structure of the piezoelectric motor was optimized using COMSOL6.0, which is a finite element analysis software. The first-order bending vibration of the vibrator was chosen as the working mode through finite element simulation, and an experimental platform was built. The performance of the prototype piezoelectric motor was tested and verified on the experimental platform. The final experimental data show that under the conditions of 300 Vp-p excitation voltage and 109 Hz driving frequency, the maximum no-load speed of the prototype reaches 6.184 mm/s, and the maximum load of the motor is 4 g.

摘要

在本研究中,设计、组装并测试了一种基于受蜻蜓飞行启发的偏置自夹紧机构的谐振单翼仿生压电电机。所设计的压电电机的主要机构包括动子(包括振动器、夹脚、仿生基座等)、定子和其他辅助部件。动子的夹脚与定子侧面接触形成偏置自夹紧机构,该机构可在振动器谐振振动的半个周期内实现夹紧效果。振动器上的压电板接收来自信号发生器的单谐波激励,使基板弯曲和变形。基板驱动夹脚有规律地移动,使动子进行直线运动。此外,重复的单谐波激励可实现动子的连续运动。使用有限元分析软件COMSOL6.0对压电电机的结构进行了优化。通过有限元模拟选择振动器的一阶弯曲振动作为工作模式,并搭建了实验平台。在实验平台上对压电电机样机的性能进行了测试和验证。最终实验数据表明,在300Vp-p激励电压和109Hz驱动频率的条件下,样机的最大空载速度达到6.184mm/s,电机的最大负载为4g。

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