Surface-mounted thin-film actuators in pointing systems applications

S. Lyshevski, J. Getpreecharsawas
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引用次数: 1

Abstract

In this paper, high-fidelity modeling, precision positioning, vibration and disturbance attenuations, as well as tracking control problems for flexible beams with thin-film PZT actuators are studied. The mathematical models of the beam are described by partial differential equations. Nonlinear actuator dynamics are integrated to perform design, and guarantee accurate performance analysis with outcome prediction. Forces developed by the PZT actuators are applied to properly position the beam, attenuate vibrations and minimize disturbances. It is illustrated that high-fidelity mathematical models of actuators must be integrated because nonlinearities, hysteresis and other phenomena cannot be neglected. These nonlinear effects significantly degrade overall performance and, therefore, the control problem must be solved. To guarantee the optimal performance, robust tracking control algorithms are designed using proportional-integral control laws with state feedback. A novel design method is applied. In addition to the solution of the tracking control problem, the parametric optimization problem must be examined. In particular, we examine the system performance using different numbers of thin-film actuators and optimize their locations. The results reported are new and have not been previously reported in the literature. The proposed mathematical models, design procedures and optimization are verified through heterogeneous simulations and data-intensive analysis using the MATLAB environment.
表面安装的薄膜致动器在指向系统中的应用
本文研究了薄膜压电陶瓷作动器柔性梁的高保真建模、精确定位、振动和干扰衰减以及跟踪控制问题。梁的数学模型用偏微分方程来描述。集成非线性作动器动力学进行设计,保证准确的性能分析和结果预测。由压电陶瓷致动器产生的力被应用于正确定位梁,衰减振动和最小化干扰。说明由于非线性、迟滞等现象不可忽视,必须对作动器的高保真数学模型进行集成。这些非线性效应显著降低了整体性能,因此必须解决控制问题。为了保证系统的最优性能,采用带状态反馈的比例积分控制律设计了鲁棒跟踪控制算法。采用了一种新颖的设计方法。除了解决跟踪控制问题外,还必须研究参数优化问题。特别地,我们使用不同数量的薄膜作动器来测试系统的性能并优化它们的位置。报告的结果是新的,以前没有在文献中报道过。在MATLAB环境下,通过异构仿真和数据密集分析,验证了所提出的数学模型、设计过程和优化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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