Wai Rong-Jong
Department of Electrical Engineering, Yuan Ze University, Chung Li 320, Taiwan, ROC.
IEEE Trans Ultrason Ferroelectr Freq Control. 2003 Jul;50(7):911-20. doi: 10.1109/tuffc.2003.1214510.
This study presents a robust control system for a linear ceramic motor (LCM) that is driven by a high-frequency voltage source inverter using two-inductance two-capacitance (LLCC) resonant technique. The structure and driving principle of the LCM are introduced. Because the dynamic characteristics and motor parameters of the LCM are nonlinear and time varying, a robust control system is designed based on the hypothetical dynamic model to achieve high-precision position control. The presentation of robust control for the LCM drive system is divided into three parts, which comprise state feedback controller, feed-forward controller, and uncertainty controller. The adaptation laws of control gains in the robust control system are derived in the sense of Lyapunov stability theorem such that the stability of the control system can be guaranteed. It not only has the learning ability similar to intelligent control, but also its control framework is more simple than intelligent control. With the proposed robust control system, the controlled LCM drive possesses the advantages of good tracking control performance and robustness to uncertainties. The effectiveness of the proposed robust control system is verified by experimental results in the presence of uncertainties. In addition, the advantages of the proposed control system are indicated in comparison with the traditional integral-proportional (IP) position control system.
本研究提出了一种用于线性陶瓷电机(LCM)的鲁棒控制系统,该电机由采用双电感双电容(LLCC)谐振技术的高频电压源逆变器驱动。介绍了LCM的结构和驱动原理。由于LCM的动态特性和电机参数是非线性且时变的,基于假设的动态模型设计了一种鲁棒控制系统,以实现高精度的位置控制。LCM驱动系统的鲁棒控制分为三个部分,包括状态反馈控制器、前馈控制器和不确定性控制器。在李雅普诺夫稳定性定理的意义下推导了鲁棒控制系统中控制增益的自适应律,从而保证了控制系统的稳定性。它不仅具有类似于智能控制的学习能力,而且其控制框架比智能控制更简单。利用所提出的鲁棒控制系统,受控的LCM驱动具有良好的跟踪控制性能和对不确定性的鲁棒性。在存在不确定性的情况下,通过实验结果验证了所提出的鲁棒控制系统的有效性。此外,与传统的积分-比例(IP)位置控制系统相比,指出了所提出控制系统的优点。