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Effects of drop viscosity on oscillation dynamics induced by AC electrowetting

机译:液滴粘度对交流电润湿引起的振荡动力学的影响

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摘要

The effects of drop viscosity on oscillation dynamics of a sessile drop, such as resonance frequency and oscillation amplitude, in response to different AC voltages (80 and 100V_(rms), corresponding to the electrowetting number η of 0.25 and 0.39, respectively) and frequencies (frequency range of 20-110 Hz in which the first and second resonance frequencies exist) were investigated, based on both experiments and theoretical modeling. The results show that drop viscosity rarely affects resonance frequency, but strongly affects the oscillation amplitude and peak width of the resonance frequency. In addition, drop oscillation in the resonance mode is no longer observed, when the drop viscosity is over the critical value, which increases with applied AC voltage. A theoretical model predicts the oscillation dynamics of sessile drops within the error level of ±5%, except for the drop with high viscosity (60mPas). Moreover, the friction coefficient obtained by fitting the theoretical models is nearly proportional to the drop viscosity. Finally, an empirical relationship, in which the maximum amplitude is inversely proportional to the drop viscosity, is obtained.
机译:响应不同的交流电压(80和100V_(rms),分别对应于电润湿数η分别为0.25和0.39)和频率,液滴粘度对固定液滴的振荡动力学(如共振频率和振荡幅度)的影响基于实验和理论模型,研究了(存在第一和第二共振频率的20-110Hz的频率范围)。结果表明,液滴粘度几乎不会影响共振频率,但是会严重影响共振频率的振幅和峰宽。另外,当液滴粘度超过临界值时,不再观察到共振模式下的液滴振荡,该临界值随施加的交流电压而增加。一个理论模型预测了固着液滴的振动动力学,误差在±5%之内,除了具有高粘度(60mPas)的液滴。此外,通过拟合理论模型获得的摩擦系数几乎与液滴粘度成正比。最后,获得经验关系,其中最大振幅与液滴粘度成反比。

著录项

  • 来源
    《Sensors and Actuators 》 |2014年第1期| 48-54| 共7页
  • 作者单位

    Department of Mechanical Engineering, Pohang University of Science and Technology, San 31, Hyoja-dong, Pohang 790-784, South Korea;

    Department of Mechanical Engineering, Pohang University of Science and Technology, San 31, Hyoja-dong, Pohang 790-784, South Korea;

    Department of Mechanical Engineering, Pohang University of Science and Technology, San 31, Hyoja-dong, Pohang 790-784, South Korea;

    Department of Mechanical Engineering, Pohang University of Science and Technology, San 31, Hyoja-dong, Pohang 790-784, South Korea;

    Department of Mechanical Engineering, Pohang University of Science and Technology, San 31, Hyoja-dong, Pohang 790-784, South Korea;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    AC electrowetting; Drop oscillation; Resonance frequency; Contact line friction; Shape mode equation;

    机译:交流电润湿;跌落振荡;共振频率;接触线摩擦;形状模式方程;

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