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基于压电致动器驱动的柔性机构的三自由度运动装置研究

Research on a 3-DOF Motion Device Based on the Flexible Mechanism Driven by the Piezoelectric Actuators.

作者信息

Lv Bingrui, Wang Guilian, Li Bin, Zhou Haibo, Hu Yahui

机构信息

Tianjin Key Laboratory for Advanced Mechatronic System Design and Intelligent Control, Tianjin University of Technology, Tianjin 300384, China.

出版信息

Micromachines (Basel). 2018 Nov 6;9(11):578. doi: 10.3390/mi9110578.

Abstract

This paper describes the innovative design of a three-dimensional (3D) motion device based on a flexible mechanism, which is used primarily to produce accurate and fast micro-displacement. For example, the rapid contact and separation of the tool and the workpiece are realized by the operation of the 3D motion device in the machining process. This paper mainly concerns the device performance. A theoretical model for the static performance of the device was established using the matrix-based compliance modeling (MCM) method, and the static characteristics of the device were numerically simulated by finite element analysis (FEA). The Lagrangian principle and the finite element analysis method for device dynamics are used for prediction to obtain the natural frequency of the device. Under no-load conditions, the dynamic response performance and linear motion performance of the three directions were tested and analyzed with different input signals, and three sets of vibration trajectories were obtained. Finally, the scratching experiment was carried out. The detection of the workpiece reveals a pronounced periodic texture on the surface, which verifies that the vibration device can generate an ideal 3D vibration trajectory.

摘要

本文介绍了一种基于柔性机构的三维(3D)运动装置的创新设计,该装置主要用于产生精确且快速的微位移。例如,在加工过程中,通过三维运动装置的操作实现刀具与工件的快速接触和分离。本文主要关注该装置的性能。采用基于矩阵的柔度建模(MCM)方法建立了该装置静态性能的理论模型,并通过有限元分析(FEA)对该装置的静态特性进行了数值模拟。利用拉格朗日原理和装置动力学的有限元分析方法进行预测,得到了该装置的固有频率。在空载条件下,用不同的输入信号对三个方向的动态响应性能和直线运动性能进行了测试和分析,得到了三组振动轨迹。最后进行了划痕实验。对工件的检测揭示了表面上明显的周期性纹理,这验证了振动装置能够产生理想的三维振动轨迹。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c361/6265935/e106f5e91feb/micromachines-09-00578-g001.jpg

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