Application of Active Disturbance Rejection Control to Micro-Electro-Mechanism System Transducers

L. Dong
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引用次数: 5

Abstract

Active disturbance rejection control(ADRC) is an emerging robust control technology. It improves the performance of micro-electro-mechanism system(MEMS) sensors and actuators and increases their measurement and displacement accuracies through effectively compensating the imperfections in micro-fabrications and environmental variations. The applications of an ADRC to MEMS gyroscopes and electrostatic actuators are introduced in this paper. The ADRC facilitates accurate sensing of both constant and time-varying rotation rates for MEMS gyroscopes. In addition, an alternative ADRC is initially applied to an electro-static actuator. The alternative ADRC is constructed based on partially known model information. It drives and stabilizes the displacement output of an electrostatic actuator to 99% of full capacitor gap despite of the presence of disturbance. The alternative ADRC also has better noise rejection capability than traditional ADRC. Simulation and experimental results demonstrate the robustness, effectiveness and feasibility of the ADRC in MEMS area.
自抗扰控制在微机电系统换能器中的应用
自抗扰控制是一种新兴的鲁棒控制技术。它通过有效补偿微加工和环境变化的缺陷,提高了微机电系统(MEMS)传感器和执行器的性能,提高了它们的测量和位移精度。介绍了自抗扰控制器在微机电系统陀螺仪和静电致动器中的应用。ADRC有助于MEMS陀螺仪的恒定和时变旋转速率的准确传感。此外,一种备选的自抗扰控制器最初应用于静电致动器。备选自抗扰控制器是基于部分已知的模型信息构建的。它驱动并稳定静电致动器的位移输出到满电容间隙的99%,尽管存在干扰。与传统自抗扰控制器相比,该方案具有更好的噪声抑制能力。仿真和实验结果验证了该自抗扰控制器在MEMS领域的鲁棒性、有效性和可行性。
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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