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双张量模型在向列聚合物和液晶中的翻滚。

Two-shape-tensor model for tumbling in nematic polymers and liquid crystals.

机构信息

Dipartimento di Matematica, Politecnico di Milano, Piazza Leonardo da Vinci 32, 20133 Milano, Italy.

出版信息

Phys Rev E. 2019 Jul;100(1-1):012706. doi: 10.1103/PhysRevE.100.012706.

Abstract

Most, but not all, liquid crystals tend to align when subject to shear flow, while most nematic polymeric liquid crystals undergo a tumbling instability, where the director rotates with the flow. The reasons of this instability remain elusive, as it is possible to find similar molecules exhibiting opposite behaviors. We propose a continuum theory suitable for describing a wide range of material behaviors, ranging form nematic elastomers to nematic polymers and nematic liquid crystals, where the material parameters have meaningful physical interpretations and the conditions for tumbling emerge clearly. There are two possible ways to relax the internal stress in a nematic material. The first is the reorganization of the polymer network, the second is the alignment of the network natural axis with respect to the principal direction of the effective strain. We show that tumbling occurs whenever the second mechanism is less efficient than the first. Furthermore, we provide a justification of the experimental fact that at high temperatures, in an isotropic phase, only flow alignment is observed and no tumbling is possible, even in polymers.

摘要

大多数(但不是全部)液晶在受到剪切流时倾向于对齐,而大多数向列型聚合物液晶经历翻滚不稳定性,其中指向矢随流旋转。这种不稳定性的原因仍然难以捉摸,因为有可能找到表现出相反行为的相似分子。我们提出了一种适用于描述广泛材料行为的连续体理论,范围从向列型弹性体到向列型聚合物和向列型液晶,其中材料参数具有有意义的物理解释,并且翻滚的条件清晰可见。向列型材料中内部应力有两种可能的释放方式。第一种是聚合物网络的重组,第二种是网络自然轴相对于有效应变主方向的对齐。我们表明,只要第二种机制不如第一种机制有效,就会发生翻滚。此外,我们还证明了实验事实,即在高温下,各向同性相中仅观察到流动取向,并且即使在聚合物中也不可能发生翻滚。

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