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FINGERING IN THE FLUID-FLUID DISPLACEMENT OF HIGHLY ELASTIC FLUIDS

机译:在高弹性流体的流体流体位移中起作用

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The study of purely elastic flow instabilities is now a burgeoning field having its modern origins in the examination of viscometric bulk flow instabilities a decade ago. The initial examinations of Taylor-Couette, Dean, and Taylor-Dean flow, where the deformation gradient is constant along streamlines, have given way to the study of more complex flows such as eccentric cylinder flows and closed cavity flows. In the latter instances, global stress effects are important in the stability picture, and large scale numerical solutions of the flow field using reasonable constitutive equations for the polymeric fluid are critical. With knowledge of the mechanisms of elastic bulk flow instabilities, much of the recent work has been focussed on interfacial instabilities created or seriously enhanced by elastic effects. Certainly, in terms of the practical implications of these instabilities, the presence of interfacial instabilities in extrusion processes, coating applications, etc. can be the most important limiting factor in processing rates. The prototype for the study of these instabilities is the fluid-fluid displacement fingers associated with Hele-Shaw, or alternatively the "ribbing instability" often discussed in coating applications. Careful experiments demonstrate that fluid elasticity dramatically destabilises these flows and this is manifested by markedly reduced critical penetration speeds at which "fingers" or "ribs" form. Moreover, the wavelength of instability at the critical conditions is qualitatively changed by fluid elasticity. This occurs over a wide spectrum of such flows, and it is even found that displacement, which would be stable for Newtonian fluids at ALL speeds, may be unstable for elastic fluids. Experimental evidence is given that elastic stresses generated very near the interface created by local recirculation flows play a key role in the mechanisms of these elastic displacement instabilities.
机译:纯弹性流动不稳定性的研究,现在是具有粘度散装流动不稳定性的检查它的现代起源十年前的一个新兴领域。泰勒-库埃特,迪安和Taylor-迪安流,其中,所述变形梯度是沿流线常数,初始检查已经让位给的更复杂的学习作为偏心缸流动并封闭的腔流动流这样。在后者的情况下,全球应力效应是在稳定性图象重要的,并且采用合理的本构方程用于聚合物流体流场的大规模数值解是至关重要的。随着弹性体积流动不稳定性的机制的认识,许多最近的工作已经集中在通过弹性效应产生或增强的严重不稳定的界面。当然,在这些不稳定性的实际影响的方面,在挤压过程的不稳定性界面,涂层应用等的存在可以在处理速度的最重要的限制因素。原型为这些不稳定性的研究与海伦 - 肖,或者替代地,“肋条不稳定”通常用于涂料应用中所讨论的相关联的流体 - 流体位移手指。仔细的实验​​表明,流体弹性急剧destabilises这些流并且这通过显着降低的临界速度渗透在该“手指”或“肋”的形式表现出来。此外,不稳定的在临界条件下的波长通过流体弹性定性改变。这发生在这样的流动广谱,它甚至发现位移,这将是在所有的速度牛顿流体稳定,可以是用于弹性流体不稳定。实验证据是因为产生弹性应力非常接近当地再循环创建的界面流动在这些弹性位移不稳定性的机制发挥关键作用。

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