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Dynamic Modeling and Anti-Disturbing Control of an Electromagnetic MEMS Torsional Micromirror Considering External Vibrations in Vehicular LiDAR

机译:电磁MEMS扭转微镜的动态建模与防扰控制考虑车辆潮羊段外部振动

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摘要

Micromirrors based on micro-electro-mechanical systems (MEMS) technology are widely employed in different areas, such as optical switching and medical scan imaging. As the key component of MEMS LiDAR, electromagnetic MEMS torsional micromirrors have the advantages of small size, a simple structure, and low energy consumption. However, MEMS micromirrors face severe disturbances due to vehicular vibrations in realistic use situations. The paper deals with the precise motion control of MEMS micromirrors, considering external vibration. A dynamic model of MEMS micromirrors, considering the coupling between vibration and torsion, is proposed. The coefficients in the dynamic model were identified using the experimental method. A feedforward sliding mode control method (FSMC) is proposed in this paper. By establishing the dynamic coupling model of electromagnetic MEMS torsional micromirrors, the proposed FSMC is evaluated considering external vibrations, and compared with conventional proportion-integral-derivative (PID) controls in terms of robustness and accuracy. The simulation experiment results indicate that the FSMC controller has certain advantages over a PID controller. This paper revealed the coupling dynamic of MEMS micromirrors, which could be used for a dynamic analysis and a control algorithm design for MEMS micromirrors.
机译:基于微电机械系统(MEMS)技术的微镜广泛用于不同区域,例如光学开关和医用扫描成像。作为MEMS LIDAR的关键组成部分,电磁MEMS扭转微镜具有小尺寸,结构简单和低能量消耗。然而,由于现实使用情况的车辆振动,MEMS微镜面临严重的扰动。本文涉及MEMS微镜的精确运动控制,考虑到外部振动。考虑振动和扭转之间的耦合,提出了MEMS微镜的动态模型。使用实验方法识别动态模型中的系数。本文提出了一种前馈滑动模式控制方法(FSMC)。通过建立电磁MEMS扭转微镜的动态耦合模型,考虑到外部振动,并与鲁棒性和准确性方面的传统比例积分(PID)控制相比,评估所提出的FSMC。仿真实验结果表明FSMC控制器在PID控制器上具有某些优点。本文揭示了MEMS微镜的耦合动态,可用于MEMS微镜的动态分析和控制算法设计。

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