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Characteristics of laterally vibrating resonant microcantilevers in viscous liquid media

机译:粘性液体介质中横向振动共振微悬臂梁的特性

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摘要

The characteristics of microcantilevers vibrating laterally in viscous liquid media are investigated and compared to those of similar microcantilevers vibrating in the out-of-plane direction. The hydrodynamic loading on the vibrating beam is first determined using a numerical model. A semi-analytical expression for the hydrodynamic forces in terms of the Reynolds number and the aspect ratio (beam thickness over beam width) is obtained by introducing a correction factor to Stokes' solution for a vibrating plate of infinite area to account for the effects of the thickness. The results enable the effects of fluid damping and effective fluid mass on the resonant frequency and the quality factor (Q) to be investigated as a function of both the beam's geometry and liquid medium's properties and compared to experimentally determined values given in the literature. The resonant frequency and Q are found to be higher for laterally vibrating microcantilevers compared to those of similar geometry experiencing transverse (out-of-plane) vibration. Compared to transversely vibrating beams, the resonant frequency of laterally vibrating beams is shown to decrease at a slower rate (with respect to changes in viscosity) in media having higher viscosities than water. The theoretical results are compared to experimental data obtained for cantilevers completely immersed in solutions of varying aqueous percent glycerol. The increases in resonant frequency and Q are expected to yield much lower limits of detection in liquid-phase chemical sensing applications.
机译:研究了在粘性液体介质中横向振动的微悬臂梁的特性,并将其与沿平面外方向振动的类似微悬臂梁的特性进行了比较。首先使用数值模型确定振动梁上的流体动力载荷。通过将校正因子引入到无穷大振动板的斯托克斯解中,获得了基于雷诺数和纵横比(梁的厚度对梁宽度)的流体动力的半解析表达式。厚度。结果使得能够研究流体阻尼和有效流体质量对共振频率和品质因数(Q)的影响,该影响是梁的几何形状和液体介质性质的函数,并与文献中给出的实验确定值进行比较。发现横向振动微悬臂的共振频率和Q高于经历横向(平面外)振动的类似几何体的共振频率和Q。与横向振动梁相比,在比水具有更高粘度的介质中,横向振动梁的共振频率显示出降低的速度(相对于粘度变化)。将理论结果与悬臂完全浸入各种甘油水溶液的实验数据进行比较。谐振频率和Q的增加有望在液相化学传感应用中产生更低的检测极限。

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  • 来源
    《Journal of Applied Physics》 |2012年第1期|p.014907.1-014907.14|共14页
  • 作者单位

    Department of Electrical and Computer Engineering, Marquette University, Milwaukee, Wisconsin 53233, USA;

    Department of Electrical and Computer Engineering, Marquette University, Milwaukee, Wisconsin 53233, USA;

    Department of Civil and Environmental Engineering, Marquette University, Milwaukee, Wisconsin 53233, USA;

    School of Electrical and Computer Engineering, Georgia Institute of Technology, Atlanta, Georgia 30332, USA;

    Universite de Bordeaux, CNRS, IMS Laboratory, Talence, France;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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