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HIGHLY TUNABLE ELECTROTHERMALLY ACTUATED ARCH RESONATOR

机译:高度可调的电热致动拱形谐振器

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摘要

This paper demonstrates experimentally, theoretically, and numerically a wide-range tunability of electrothermally actuated MEMS arch beams. The beams are made of silicon and are intentionally fabricated with some curvature as in-plane shallow arches. Analytical results based on the Galerkin discretization of the Euler Bernoulli beam theory are generated and compared to the experimental data and results of a multi-physics finite-element model. A good agreement is found among all the results. The electrothermal voltage is applied between the anchors of the clamped-clamped MEMS arch beam, generating a current that passes through the MEMS arch beam and controls its axial stress caused by thermal expansion. When the electrothermal voltage increases, the compressive stress increases inside the arch beam. This leads to increase in its curvature, thereby increases the resonance frequencies of the structure. We show here that the first resonance frequency can increase up to twice its initial value. We show also that after some electro-thermal voltage load, the third resonance frequency starts to become more sensitive to the axial thermal stress, while the first resonance frequency becomes less sensitive. These results can be used as guidelines to utilize arches as wide-range tunable resonators.
机译:本文在实验,理论和数值上演示了电热驱动MEMS拱形梁的宽范围可调性。横梁由硅制成,并以一定的曲率制成平面内浅拱形。生成基于Euler Bernoulli束理论的Galerkin离散化的分析结果,并将其与实验数据和多物理场有限元模型的结果进行比较。在所有结果中都找到了很好的共识。电热电压施加在夹紧的MEMS拱形梁的锚之间,产生流过MEMS拱形梁的电流,并控制由热膨胀引起的轴向应力。当电热电压增加时,弓形梁内部的压缩应力增加。这导致其曲率增加,从而增加了结构的共振频率。我们在这里表明,第一共振频率可以增加到其初始值的两倍。我们还表明,在一定的电热电压负载之后,第三共振频率开始对轴向热应力变得更加敏感,而第一共振频率变得不那么敏感。这些结果可用作将拱门用作宽范围可调谐振器的指导原则。

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