Wen Fuh Liang, Yen Chi Yung, Ouyang Minsun
Department of Engineering and System Science, National Tsing-Hua University, 30043, Hsinchu, Taiwanb, ROC.
Ultrasonics. 2003 Aug;41(6):437-50. doi: 10.1016/s0041-624x(03)00128-8.
The purpose of this study is to gain the knowledge and experience in the design of thin-disk piezoceramic-driving ultrasonic actuator dedicated. In this paper, the design and construction of an innovative ultrasonic actuator is developed as a stator, which is a composite structure consisting of piezoceramic (PZT) membrane bonded on a metal sheet. Such a concentric PZT structure possesses the electrical and mechanical coupling characteristics in flexural wave. The driving ability of the actuator comes from the mechanical vibration of extension and shrinkage of a metal sheet due to the converse piezoelectric effect, corresponding to the frequency of a single-phase AC power. By applying the constraints on the specific geometry positions on the metal sheet, the various behaviors of flexural waves have been at the different directions. The rotor is impelled by the actuator with rotational speeds of 600 rpm in maximum using a friction-contact mechanism. Very high actuating and braking abilities are obtained. This simple and inexpensive structure of actuator demonstrates that the mechanical design of actuator and rotor could be done separately and flexibly according to the requirements for various applications. And, its running accuracy and positioning precision are described in Part II.A closed loop servo positioning control i.e. sliding mode control (SMC) is used to compensate automatically for nonlinearly mechanical behaviors such as dry friction, ultrasonic vibrating, slip-stick phenomena. Additionally, SMC scheme has been successfully applied to position tracking to prove the excellent robust performance in noise rejection.
本研究的目的是获取在专用薄盘压电陶瓷驱动超声致动器设计方面的知识和经验。本文开发了一种创新型超声致动器的设计与构造,将其作为定子,它是一种由粘结在金属片上的压电陶瓷(PZT)膜组成的复合结构。这种同心PZT结构在弯曲波中具有机电耦合特性。致动器的驱动能力源于由于逆压电效应导致的金属片伸缩的机械振动,该振动对应于单相交流电源的频率。通过对金属片上特定几何位置施加约束,弯曲波在不同方向上呈现出各种行为。利用摩擦接触机制,致动器可将转子以最高600转/分钟的转速推动。获得了非常高的驱动和制动能力。这种简单且成本低廉的致动器结构表明,致动器和转子的机械设计可以根据各种应用的要求分别且灵活地进行。并且,其运行精度和定位精度将在第二部分中描述。采用闭环伺服定位控制,即滑模控制(SMC)来自动补偿诸如干摩擦、超声振动、粘滑现象等非线性机械行为。此外,滑模控制方案已成功应用于位置跟踪,以证明其在抗噪声方面具有出色的鲁棒性能。