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Analysis of change in motional capacitance of electrical equivalent circuit of quartz-crystal tuning-fork tactile sensor induced by viscoelastic materials in contact with its base

机译:粘弹性材料与其基座接触引起的石英晶体音叉式触觉传感器等效电路的运动电容变化分析

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摘要

We investigated experimentally and theoretically the change in the reciprocal of the motional capacitance Δ(1/C_a) of a quartz-crystal tuning-fork tactile sensor before and after its base comes into contact with neoprene rubbers. We derived the analytical formula for the motional capacitance of the electrical equivalent circuit of the sensor at resonance based on the combination of the L-shaped bar model and viscoelastic foundation model, and the law energy of conservation. We found from both contact experiments and theoretical considerations on the analytical formula that Δ(1/C_a) is intrinsically induced by both the dynamic Young's modulus and viscosity of neoprene rubbers at 32.5 kHz, which is the actual resonant frequency of the quartz tactile sensor. In this paper, we showed experimentally and theoretically for the first time that the motional capacitance of the tuning fork tactile sensor is affected by the dynamic viscosity of materials in contact with the sensor's base, except their dynamic Young's modulus.
机译:我们在实验和理论上研究了石英晶体音叉触觉传感器的运动电容Δ(1 / C_a)的倒数在其底部与氯丁橡胶接触之前和之后的倒数变化。基于L型条形模型和粘弹性基础模型,并结合守恒定律,推导了共振时传感器等效电路的运动电容的解析公式。从接触实验和分析公式的理论考虑我们发现,Δ(1 / C_a)是由氯丁橡胶的动态杨氏模量和粘度在32.5 kHz时固有地诱发的,这是石英触觉传感器的实际谐振频率。在本文中,我们首次通过实验和理论证明,音叉触觉传感器的运动电容受与传感器底座接触的材料的动态粘度(除了它们的动态杨氏模量)的影响。

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  • 来源
    《Japanese journal of applied physics》 |2014年第7s期|07KD05.1-07KD05.6|共6页
  • 作者

    Hideaki Itoh; Naoki Hatakeyama;

  • 作者单位

    Faculty of Engineering, Shinshu University, Nagano 380-8553, Japan;

    Faculty of Engineering, Shinshu University, Nagano 380-8553, Japan;

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  • 正文语种 eng
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