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Modeling Monophasic Flow of Polymer Solutions in Porous Media: Assessing Relative Impact of Intrinsic Fluid Properties and Pore Microstructure

机译:多孔介质中聚合物溶液的单表流动模拟:评估内在流体性能和孔隙微观结构的相对影响

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摘要

Polymer solutions are often described as viscoelastic fluids, whose rheological behavior dynamically evolves according to the flow shear rate due to successive contractions and relaxations of inner deformable components. Contrary to shear-thickening and shear-thinning fluids, viscoelastic fluids can undergo an increase in the normal stress-differences even in simple geometries, leading to counterintuitive flow patterns. In this paper, we investigate numerically the monophasic flow of viscoelastic fluids through microfluidic devices. The objective is to qualitatively assess how modification of the rheological properties and the geometry of porous media representative element affect the flow regime at microscale. Deviations from equivalent Newtonian model are analyzed to quantify the contribution of elasticity in the flow. It is demonstrated that depending on the geometry, flow of polymer solution can display anisotropic features and flow resistance at relatively low viscoelastic numbers, which is coherent with previous microscopic experimental and numerical studies. Ensued applications of the formulated microscale model are discussed.
机译:聚合物溶液通常被描述为粘弹性液体,其流变行为由于内变形组分的连续收缩和弛豫而动态地发展根据流动剪切速率。与剪切增稠和剪切稀释液相反,即使在简单的几何形状中,粘弹性流体也可以经历正常应力差异的增加,导致逆行于逆行模式。在本文中,我们通过微流体器件进行了数量的单表粘弹性流体流动。目的是定性评估如何改变流变性质和多孔介质代表性元素的几何形状如何影响微尺寸的流动状态。分析了与等效牛顿模型的偏差,以量化弹性在流动中的贡献。据证明,根据几何形状,聚合物溶液的流动可以在相对低的粘弹性下显示各向异性特征和流动性,这与先前的微观实验和数值研究相干。讨论了随着制定的微观模型的应用。

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