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Effects of Interface Slip and Viscoelasticity on the Dynamic Response of Droplet Quartz Crystal Microbalances

机译:界面滑移和粘弹性对微滴石英晶体微天平动态响应的影响

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摘要

In the present paper we first present a derivation based on the time-dependent perturbation theory to develop the dynamical equations which can be applied to model the response of a droplet quartz crystal microbalance (QCM) in contact with a single viscoelastic media. Moreover, the no-slip boundary condition across the device-viscoelastic media interface has been relaxed in the present model by using the Ellis-Hayward slip length approach. The model is then used to illustrate the characteristic changes in the frequency and attenuation of the QCM with and without the boundary slippage due to the changes in viscoelasticity as the coated media varies from Newtonian liquid to solid. To complement the theory, experiments have been conducted with microliter droplets of aqueous glycerol solutions and silicone oils with a viscosity in the range of 50approx10 000 cS. The results have confirmed the Newtonian characteristics of the glycerol solutions. In contrast, the acoustic properties of the silicones oils as reflected in the impedance analysis are different from the glycerol solutions. More importantly, it was found that for the silicone oils the frequency steadily increased for several hours and even exceeded the initial value of the unloaded crystal as reflected in the positive frequency shift. Collaborative effects of interfacial slippage and viscoelasticity have been introduced to qualitatively interpret the measured frequency up-shifts for the silicone oils. The present work shows the potential importance of the combined effects of viscoelasticity and interfacial slippage when using the droplet QCM to investigate the rheological behavior of more complex fluids.
机译:在本文中,我们首先提出基于时变摄动理论的推导,以开发动力学方程,该方程可用于模拟与单个粘弹性介质接触的液滴石英晶体微天平(QCM)的响应。而且,在当前模型中,通过使用Ellis-Hayward滑移长度方法,已经放宽了跨设备-粘弹性介质界面的无滑移边界条件。然后使用该模型来说明随着涂层介质从牛顿液体到固体的变化,由于粘弹性的变化,在有和没有边界滑移的情况下,QCM的频率和衰减的特性变化。为了补充该理论,已经进行了微滴甘油水溶液和粘度在50approx10 000 cS范围内的硅油的实验。结果证实了甘油溶液的牛顿特性。相反,在阻抗分析中反映出的硅油的声学特性与甘油溶液不同。更重要的是,发现硅油的频率稳定增长了几个小时,甚至超过了正频移所反映的未加载晶体的初始值。已经引入了界面滑移和粘弹性的协同作用,以定性解释硅油的测得的频率上移。当前的工作表明了当使用液滴QCM研究更复杂的流体的流变行为时,粘弹性和界面滑移的综合作用的潜在重要性。

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