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流动停止后粘弹性流体中的非均匀性诱导收缩

Heterogeneity-induced retraction in viscoelastic fluids following cessation of flow.

作者信息

McCauley Patrick J, Kumar Satish, Calabrese Michelle A

机构信息

Department of Chemical Engineering and Materials Science, University of Minnesota Twin Cities, Minneapolis, Minnesota 55455, USA.

出版信息

Soft Matter. 2024 Jun 12;20(23):4567-4582. doi: 10.1039/d4sm00203b.

Abstract

Complex fluids including colloidal suspensions, microgels, and entangled wormlike micelles (WLMs) can develop heterogeneous flow regions under imposed steady shear. In some of these systems, the evolution to this flow state from rest is accompanied by flow reversal - when a portion of the fluid moves opposite to the imposed flow direction. Flow reversal was proposed to occur in shear startup when (1) the fluid has significant elasticity, and (2) the flow becomes heterogeneous immediately following the stress overshoot [McCauley , , 2023, , 661-681]. To verify this hypothesis, a new method is developed for measuring flow heterogeneity. Upon cessation of the imposed flow, elasticity and flow heterogeneity cause retraction of the fluid, which is quantified with particle tracking velocimetry. Flow is stopped at key times during shear startup in two systems: a gel-like WLM that exhibits flow reversal before heterogeneous flow and a viscoelastic, fluid-like WLM that does not. The degree of flow heterogeneity is inferred from the shape and magnitude of velocity profiles measured during retraction. Flow heterogeneity develops earlier in gel-like WLMs - supporting the proposed flow reversal criteria. For comparison, heterogeneous Couette flows described with the upper-convected Maxwell or Germann-Cook-Beris models are analyzed. These theoretical flow problems confirm that stark differences in rheological properties across the flow geometry can cause significant fluid retraction and reproduce key features of the experimentally observed retraction. This new method can be used to extract quantitative information about spatially heterogeneous flows in viscoelastic complex fluids, whether or not flow reversal occurs.

摘要

包括胶体悬浮液、微凝胶和缠结的蠕虫状胶束(WLM)在内的复杂流体在施加稳定剪切力时会形成非均匀流动区域。在其中一些系统中,从静止状态向这种流动状态的演变伴随着流动反转——即当一部分流体朝着与施加的流动方向相反的方向移动时。有人提出,当(1)流体具有显著弹性,且(2)在应力过冲后流动立即变得不均匀时,在剪切启动过程中会发生流动反转[麦考利,,2023,,661 - 681]。为了验证这一假设,开发了一种测量流动不均匀性的新方法。在施加的流动停止后,弹性和流动不均匀性会导致流体回缩,这可以用粒子跟踪测速法进行量化。在两个系统的剪切启动过程中的关键时间点停止流动:一种凝胶状的WLM,它在非均匀流动之前表现出流动反转;另一种是粘弹性的、流体状的WLM,它不表现出流动反转。从回缩过程中测量的速度剖面的形状和大小推断流动不均匀程度。凝胶状WLM中流动不均匀性出现得更早——这支持了所提出的流动反转标准。作为比较,分析了用上随体麦克斯韦模型或格尔曼 - 库克 - 贝里斯模型描述的非均匀库埃特流动。这些理论流动问题证实,整个流动几何结构中流变特性的显著差异会导致显著的流体回缩,并重现实验观察到的回缩的关键特征。这种新方法可用于提取有关粘弹性复杂流体中空间非均匀流动的定量信息,无论是否发生流动反转。

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