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Adjustable static and dynamic actuation of clamped-guided beams using electrothermal axial loads

机译:使用电热轴向载荷可调节静态和动态致动夹紧引导梁

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The paper presents adjustable static and dynamic actuations of in-plane clamped-guided beams. The structures, of variable stiffness, can be used as highly tunable resonators and actuators. Axial loads are applied through electrothermal U-shaped and flexure beams actuators stacked near the edges of curved (arch) beams. The electrothermal actuators can be configurred in various ways to adjust as desired the mechanical stiffness of the structures; thereby controlling their deformation stroke as actuators and their operating resonance frequency as resonators. The experimental and finite element results demonstrate the flexibility of the designs in terms of static displacements and resonance frequencies of the first and second symmetric modes of the arches. The results show considerable increase in the resonance frequency and deflection of the microbeam upon changing end actuation conditions, which can be promising for low voltage actuation and tunable resonators applications, such as filters and memory devices. As case studies of potential device configurations of the proposed design, we demonstrate eight possibilities of achieving new static and dynamic behaviors, which produce various resonance frequencies and static displacement curves. The ability to actively shift the entire frequency response curve of a device is desirable for several applications to compensate for in-use anchor degradations and deformations. As an example, we experimentally demonstrate using the device as a resonant logic gate, with active resonance tuning, showing fundamental 2-bit logic functions, such as AND,XOR, and NOR. (C) 2018 Elsevier B.V. All rights reserved.
机译:本文呈现了平面内夹紧引导梁的可调节静态和动态致动。可变刚度的结构可用作高度可调谐的谐振器和致动器。轴向载荷通过电热U形和弯曲梁致动器堆叠在弯曲(拱形)梁的边缘附近堆叠。电热致动器可以以各种方式配置,以根据需要调整结构的机械刚度;从而将它们的变形冲程控制为致动器及其运行谐振频率作为谐振器。实验和有限元结果表明了在拱门的第一和第二对称模式的静态位移和谐振频率方面的灵活性。结果表明,在更换最终致动条件时,微沟的共振频率和偏转的相当大的增加,这对于低电压致动和可调谐谐振器应用,例如滤波器和存储器件。如提出设计的潜在设备配置的情况下,我们展示了实现新的静态和动态行为的八种,产生各种共振频率和静态位移曲线。主动移动设备的整个频率响应曲线的能力是理想的,用于多种应用来补偿使用内的锚劣化和变形。作为示例,我们通过主动谐振调谐,实验使用该设备作为谐振逻辑门,示出了基本的2位逻辑功能,例如和XOR和NOR。 (c)2018年elestvier b.v.保留所有权利。

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