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Electro-osmotic and pressure-driven flow of viscoelastic fluids in microchannels: Analytical and semi-analytical solutions

机译:微通道中粘弹性流体的电渗和压力驱动流:解析和半解析解决方案

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In this work, we present a series of solutions for combined electro-osmotic and pressure-driven flows of viscoelastic fluids in microchannels. The solutions are semi-analytical, a feature made possible by the use of the Debye-Huckel approximation for the electrokinetic fields, thus restricted to cases with small electric double-layers, in which the distance between the microfluidic device walls is at least one order of magnitude larger than the electric double-layer thickness. To describe the complex fluid rheology, several viscoelastic differential constitutive models were used, namely, the simplified Phan-Thien-Tanner model with linear, quadratic or exponential kernel for the stress coefficient function, the Johnson-Segalman model, and the Giesekus model. The results obtained illustrate the effects of the Weissenberg number, the Johnson-Segalman slip parameter, the Giesekus mobility parameter, and the relative strengths of the electro-osmotic and pressure gradient-driven forcings on the dynamics of these viscoelastic flows. Published by AIP Publishing.
机译:在这项工作中,我们为微通道中的粘弹性流体的电渗透和压力驱动相结合的流动提出了一系列解决方案。该解决方案是半解析的,这是通过使用电动运动场的Debye-Huckel逼近法实现的,因此仅限于双电层较小的情况,其中微流体装置壁之间的距离至少为一个数量级的数量级大于双电层的厚度。为了描述复杂的流体流变学,使用了几种粘弹性微分本构模型,即应力系数函数为线性,二次或指数核的简化Phan-Thien-Tanner模型,Johnson-Segalman模型和Giesekus模型。获得的结果说明了魏森伯格数,约翰逊-西格尔曼滑移参数,吉塞库斯迁移率参数以及电渗和压力梯度驱动的强迫对这些粘弹性流动力学的相对强度的影响。由AIP Publishing发布。

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