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Added-Mass Effect in Modeling of Cilia-Based Devices for Microfluidic Systems

机译:微流体系统中基于纤毛的设备建模中的附加质量效应

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摘要

This article shows that the added mass due to fluid-structure interaction significantly affects the vibrational dynamics of cilia-based (vibrating cantilever-type) devices for handling microscale fluid flows. Commonly, the hydrodynamic interaction between the cilia-based actuators and fluid is modeled as a drag force that results in damping of the cilia motion. Our main contribution is to show that such damping effects cannot explain the substantial reduction in the resonant-vibrational frequency of the cilia actuator operating in liquid when compared with the natural frequency of the cilia in air. It is shown that an added-mass approach (that accounts for the inertial loading of the fluid) can explain this reduction in the resonant-vibrational frequency when operating cantilever-type devices in liquids. Additionally, it is shown that the added-mass effect can explain why the cilia-vibration amplitude is not substantially reduced in a liquid by the hydrodynamic drag force. Thus, this article shows the need to model the added-mass effect, both theoretically and by using experimental results.
机译:本文表明,由于流体-结构相互作用而增加的质量显着影响了基于纤毛的(振动悬臂式)装置的振动动力学,该装置用于处理微型流体。通常,基于纤毛的致动器和流体之间的流体动力相互作用被建模为导致阻尼纤毛运动的阻力。我们的主要贡献是表明,与空气中纤毛的固有频率相比,这种阻尼效应无法解释在液体中工作的纤毛致动器的共振频率的大幅降低。结果表明,当在悬臂式设备中使用液体时,增加质量的方法(考虑了流体的惯性载荷)可以解释这种共振频率的降低。另外,还表明,附加质量效应可以解释为什么流体动力阻力不会使液体中的纤毛振动幅度基本上没有减小。因此,本文表明有必要在理论上和通过实验结果对附加质量效应进行建模。

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  • 来源
    《Journal of Vibration and Acoustics》 |2010年第2期|p.024501.1-024501.7|共7页
  • 作者单位

    Department of Mechanical Engineering, University of Washington, Seattle, WA 98195-2600;

    Department of Mechanical Engineering, University of Washington, Seattle, WA 98195-2600;

    Department of Mechanical Engineering, University of Washington, Seattle, WA 98195-2600;

    Department of Mechanical Engineering, University of Washington, Seattle, WA 98195-2600;

    Department of Mechanical Engineering, University of Washington, Seattle, WA 98195-2600;

    Department of Mechanical Engineering, University of Washington, Seattle, WA 98195-2600;

    Department of Mechanical Engineering, University of Washington, Seattle, WA 98195-2600;

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