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首页> 外文期刊>Journal of Non-Newtonian Fluid Mechanics >Elastic instability and secondary flow in cross-slot flow of wormlike micellar solutions
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Elastic instability and secondary flow in cross-slot flow of wormlike micellar solutions

机译:蜗杆胶束溶液跨槽流动的弹性不稳定和二次流动

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摘要

In this work, we focus on modeling the flow of wormlike micellar solutions in a cross-slot device. In particular, we investigate the role that the breakage of wormlike micelles plays in the formation of lip vortices and the development of an asymmetric elastic instability. The cross-slot induces a planar elongational flow field around the stagnation point in the center of the geometry, and a shear-dominated flow in the inlet and outlet arms. The extensional flow can induce the emergence of a bifurcation, in which the symmetric flow undergoes an instability and becomes asymmetric at sufficiently large flow rates. We further show that this instability can be completely suppressed by creating micelles that are easier to break under imposed stretching. Furthermore, at larger flow rates, unlike comparable simulations of polymer solutions, the asymmetric flow remains steady in agreement with experiments. In addition, the shear flow can induce the formation of a recirculation region in the inlet arm along the channel wall directly upstream of the corner. In particular, we reveal the possibility of controlling the vortex regions via flow-induced breakage; as the chains become easier to break, the degree of shear thinning increases and the size of the vortices decreases. Ultimately, our predictions show that chain scission plays an important role in altering fluid flow.
机译:在这项工作中,我们专注于在交叉槽装置中建模蜗杆状胶束溶液的流动。特别是,我们调查蠕虫状胶束破裂在唇涡体的形成和不对称弹性不稳定性的发展中起作用的作用。交叉槽在几何形状中心的停滞点周围引导平面伸长流场,以及入口和出口臂中的剪切主导流。延伸流动可以诱导分叉的出现,其中对称流量经历不稳定性并且以足够大的流速变得不对称。我们进一步表明,通过在施加的拉伸下更容易破裂的胶束可以完全抑制这种不稳定性。此外,在较大的流速下,与聚合物溶液的可比模拟不同,与实验一致地保持不对称流动。另外,剪切流程可以在拐角的上游沿沟道壁沿着通道壁诱导入口臂中的再循环区域。特别是,我们揭示了通过流动引起的破损控制涡旋区域的可能性;由于链条变得更容易破裂,因此剪切变薄程度增加,涡流的尺寸降低。最终,我们的预测表明,连锁群体在改变流体流动方面发挥着重要作用。

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