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Shear-banding structure orientated in the vorticity direction observed for equimolar micellar solution

机译:等摩尔胶束溶液的剪切带结构沿涡度方向取向

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The non-monotonic shear flow of a viscoelastic equimolar aqueous surfactant solution (cetylpyridinium chloride-sodium salicylate) is investigated rheologically and optically in a transparent strain-controlled Taylor Couette flow cell. As reported before, this particular wormlike micellar solution exhibits first a shear thinning and then a pronounced shear-thickening behavior. Once this shear-thickening regime is reached, a transient phase separation/shear banding of the solution into turbid and clear ring-like patterns orientated perpendicular to the vorticity axis, i.e., stacked like pancakes, is observed (Wheeler et al. 1998; Fischer 2000). The solution exhibit several unique features as no induction period of the shear induced phase, no structural buildup at the inner rotating cylinder, jumping pancake structure of clear and turbid ringlike phases, and oscillating shear stresses appear once the pancake structure is present. According to our analysis this flow phenomenon is not purely a mechanical or rheological driven hydrodynamic instability but one has to take into account structural changes of the oriented micellar aggregates (flow induced non-equilibrium phase transition) as proposed by several authors. Although this particular flow behavior and the underlying mixture of shear induced phases and mechanical instabilities is not fully understood yet, some classification characteristics based on a recent theoretical approach by Schmitt et al. (1995) and Porte et al. (1997) where a strong coupling between the flow instability (non-homogeneous flow profile due to the bands) and the structural changes causes the observed transient phenomena can be derived. In reference to the presented model the observed orientation of the rings is typical for complex fluids that undergo a spinodal phase separation coupled with a thermodynamic flow instability. In contrast to other shear banding phenomena, this one is observed in parallel plate, cone-plate, and Couette flow cell as well as under controlled stress and controlled rate conditions. Therefore, it adds an additional aspect to the present discussion on shear banding phenomena, i.e., the coupling of hydrodynamics and phase transition of theological complex fluids. [References: 34]
机译:在透明应变控制的Taylor Couette流通池中,通过流变和光学方法研究了粘弹性等摩尔表面活性剂水溶液(氯化十六烷基吡啶鎓-水杨酸钠)的非单调剪切流。如前所述,这种特殊的蠕虫状胶束溶液首先表现出剪切变稀,然后表现出明显的剪切增稠行为。一旦达到这种剪切增稠状态,就可以观察到溶液的瞬时相分离/剪切带状,形成垂直于涡度轴的浑浊清晰的环状图案,即像薄煎饼一样堆积(Wheeler等,1998; Fischer 2000)。该解决方案表现出几个独特的特征,如没有剪切诱导相的诱导期,内部旋转圆柱体上没有结构堆积,透明和浑浊的环状相的薄煎饼结构跳跃以及一旦存在薄煎饼结构便出现振荡的剪切应力。根据我们的分析,这种流动现象并非纯粹是由机械或流变学驱动的流体动力学不稳定性,而是必须考虑到一些作者提出的定向胶束聚集体的结构变化(流动引起的非平衡相变)。尽管还没有完全理解这种特殊的流动行为以及剪切引起的相和机械不稳定性的潜在混合物,但是基于Schmitt等人最近的理论方法得出了一些分类特征。 (1995年)和Porte等人。 (1997年),其中流动不稳定性(由于带的非均匀流动剖面)与结构变化之间引起强烈的耦合,可以观察到瞬态现象。参考所提出的模型,对于经历旋节线相分离以及热力学流动不稳定性的复杂流体,观察到的环的取向是典型的。与其他剪切带现象相反,在平行板,锥板和Couette流通池中以及在受控应力和受控速率条件下都可以观察到这一现象。因此,它在当前关于剪切带现象的讨论中增加了另一个方面,即,流体动力学和神学复杂流体的相变的耦合。 [参考:34]

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