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Influence of system size and solvent flow on the distribution of wormlike micelles in a contraction-expansion geometry

机译:系统尺寸和溶剂流量对蠕虫状胶束在收缩-膨胀几何结构中的分布的影响

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Viscoelastic wormlike micelles are formed by surfactants assembling into elongated cylindrical structures. These structures respond to flow by aligning, breaking and reforming. Their response to the complex flow fields encountered in porous media is particularly rich. Here we use a realistic mesoscopic Brownian Dynamics model to investigate the flow of a viscoelastic surfactant (VES) fluid through individual pores idealized as a step expansion-contraction of size around one micron. In a previous study, we assumed the flow field to be Newtonian. Here we extend the work to include the non-Newtonian flow field previously obtained by experiment. The size of the simulations is also increased so that the pore is much larger than the radius of gyration of the micelles. For the non-Newtonian flow field at the higher flow rates in relatively large pores, the density of the micelles becomes markedly non-uniform. In this case, we find that the density in the large, slowly moving entry corner regions is substantially increased.
机译:粘弹性蠕虫状胶束是通过将表面活性剂组装成细长的圆柱形结构而形成的。这些结构通过对齐,破坏和重塑来响应流量。它们对多孔介质中遇到的复杂流场的响应特别丰富。在这里,我们使用现实的介观布朗动力学模型来研究粘弹性表面活性剂(VES)流体通过单个孔的流动,该孔理想化为尺寸约为1微米的阶梯式膨胀-收缩。在先前的研究中,我们假设流场为牛顿型。在这里,我们将工作扩展到包括先前通过实验获得的非牛顿流场。模拟的大小也增加了,因此孔隙远大于胶束的回转半径。对于较大的孔中较高流速的非牛顿流场,胶束的密度明显变得不均匀。在这种情况下,我们发现在较大的,缓慢移动的入口角区域中的密度大大增加了。

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