压电
执行机构
非线性系统
控制理论(社会学)
补偿(心理学)
磁滞
刚度
工程类
计算机科学
控制(管理)
物理
电气工程
结构工程
人工智能
心理学
量子力学
精神分析
作者
Mithun Kanchan,S Mohith,Ritesh Bhat,Nithesh Naik
出处
期刊:Technologies (Basel)
[Multidisciplinary Digital Publishing Institute]
日期:2023-11-01
卷期号:11 (6): 155-155
被引量:28
标识
DOI:10.3390/technologies11060155
摘要
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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