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Dynamic Electroosmotic Flows of Power-Law Fluids in Rectangular Microchannels

机译:矩形微通道中幂律流体的动态电渗流

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摘要

Dynamic characteristics of electroosmosis of a typical non-Newtonian liquid in a rectangular microchannel are investigated by using numerical simulations. The non-Newtonian behavior of liquids is assumed to obey the famous power-law model and then the mathematical model is solved numerically by using the finite element method. The results indicate that the non-Newtonian effect produces some noticeable dynamic responses in electroosmotic flow. Under a direct current (DC) driving electric field, it is found that the fluid responds more inertly to an external electric field and the steady-state velocity profile becomes more plug-like as the flow behavior index decreases. Under an alternating current (AC) driving electric field, the fluid is observed to experience more significant acceleration and the amplitude of oscillating velocity becomes larger as the fluid behavior index decreases. Furthermore, our investigation also shows that electroosmotic flow of power-law fluids under an AC/DC combined driving field is enhanced as compared with that under a pure DC electric field. These dynamic predictions are of practical use for the design of electroosmotically-driven microfluidic devices that analyze and process non-Newtonian fluids such as biofluids and polymeric solutions.
机译:通过使用数值模拟,研究了矩形微通道中典型非牛顿液体的电渗动态特性。假定液体的非牛顿行为服从著名的幂律模型,然后使用有限元方法对数学模型进行数值求解。结果表明,非牛顿效应在电渗流中产生了一些明显的动态响应。发现在直流(DC)驱动电场下,流体对外部电场的反应更加惰性,并且随着流动行为指数的降低,稳态速度分布变得更加像塞子状。在交流(AC)驱动电场下,观察到流体经历了更大的加速度,并且随着流体行为指数的降低,振荡速度的幅度变得更大。此外,我们的研究还显示,与纯DC电场相比,幂律流体在AC / DC组合驱动场下的电渗流得到增强。这些动态预测对于设计用于分析和处理非牛顿流体(例如生物流体和聚合物溶液)的电渗驱动微流体装置的设计具有实际用途。

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