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Feasibility study of a smart motion generator utilizing electromagnetic microactuator arrays

机译:利用电磁微执行器阵列的智能运动发生器的可行性研究

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We present a smart rigid body motion generator based on arrays of electromagnetically driven micromembrane actuators. Unlike previous motion generators, this architecture employs a large number of micro-sized (100-200 mu m) membrane actuators to simultaneously generate the displacement of a large rigid optical mirror. Thus the actuation structure bridges the gap between the micro and macro worlds as well as the incompatibility between MEMS fabrication and traditional optical manufacturing. In order to estimate the feasibility of the architecture, a systematic study was performed on the design and simulation of the individual micromembrane actuator. Each membrane actuator consists of a high magnetization permanent magnet post structure supported by a thin membrane and a planar coil to generate magnetic field. A 3D analytical model is utilized to analyze the actuation performance of an individual actuator cell. The 3D analytical model is proved to be accurate by finite element modeling. It is suitable for fast prototyping design of magnetic actuators. Results show that the presented rigid body motion generator has many advantages including the capabilities of generating large displacement while maintaining fast frequency response and easy manufacturability.
机译:我们提出了一种基于电磁驱动微膜执行器阵列的智能刚体运动发生器。与以前的运动发生器不同,此体系结构使用大量的微型(100-200μm)薄膜致动器来同时产生大型刚性光学镜的位移。因此,驱动结构弥合了微观世界与宏观世界之间的鸿沟,以及MEMS制造与传统光学制造之间的不兼容性。为了评估该体系结构的可行性,对单个微膜致动器的设计和仿真进行了系统的研究。每个膜片致动器均由高磁化永磁体柱结构组成,该结构由薄膜和平面线圈支撑,并产生磁场。 3D分析模型用于分析单个执行器单元的执行性能。通过有限元建模证明了3D分析模型是准确的。它适用于电磁执行器的快速原型设计。结果表明,所提出的刚体运动发生器具有许多优点,包括产生大位移的能力,同时保持快速的频率响应和容易的可制造性。

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