压电作动器建模与控制方法的应用综述

Mithun Kanchan, Mohith Santhya, Ritesh Bhat, Nithesh Naik
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引用次数: 1

摘要

压电驱动器在提供微米到纳米范围内的精密运动方面有着广泛的应用。压电致动器具有运动范围更广、响应速度快、刚度高、致动力大等优点,适用于精密定位应用。然而,压电作动器在动态工作条件下固有的非线性严重影响了生成运动的精度。压电作动器的非线性是由迟滞、蠕变和振动引起的,影响了压电作动器的性能。因此,需要适当的压电致动器建模和控制方法,以模拟非线性现象并提供足够的补偿,以达到更高的运动精度。本文综述了克服压电致动器非线性问题所采用的不同方法。本文综述了基于电荷和基于电压的驱动压电执行器的控制方法。调查还包括不同的建模方法的蠕变和迟滞现象的压电驱动器。此外,本文还重点介绍了不同的控制策略及其在各种类型的压电执行器中的应用。对压电驱动器的不同建模和控制方法进行了比较,并提出了展望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Application of Modeling and Control Approaches of Piezoelectric Actuators: A Review
Piezoelectric actuators find extensive application in delivering precision motion in the micrometer to nanometer range. The advantages of a broader range of motion, rapid response, higher stiffness, and large actuation force from piezoelectric actuators make them suitable for precision positioning applications. However, the inherent nonlinearity in the piezoelectric actuators under dynamic working conditions severely affects the accuracy of the generated motion. The nonlinearity in the piezoelectric actuators arises from hysteresis, creep, and vibration, which affect the performance of the piezoelectric actuator. Thus, there is a need for appropriate modeling and control approaches for piezoelectric actuators, which can model the nonlinearity phenomenon and provide adequate compensation to achieve higher motion accuracy. The present review covers different methods adopted for overcoming the nonlinearity issues in piezoelectric actuators. This review highlights the charge-based and voltage-based control methods that drive the piezoelectric actuators. The survey also includes different modeling approaches for the creep and hysteresis phenomenon of the piezoelectric actuators. In addition, the present review also highlights different control strategies and their applications in various types of piezoelectric actuators. An attempt is also made to compare the piezoelectric actuator’s different modeling and control approaches and highlight prospects.
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