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Shear-driven and pressure-driven flow of a nematic liquid crystal in a slowly varying channel

机译:在缓慢变化的通道中向列液晶的剪切驱动和压力驱动流动

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摘要

Motivated by the industrially important processes of blade coating and cavity filling of liquid crystalline materials, we consider steady, two-dimensional shear-driven (Couette) and pressure-driven (plane Poiseuille) flow of a thin film of a nematic liquid crystal in the slowly varying channel formed between a fixed blade of prescribed shape and a planar substrate. Specifically, blade coating motivates the study of shear-driven flow due to the motion of the substrate parallel to itself with constant velocity, while cavity filling motivates the study of pressure-driven flow due to an imposed pressure drop. We use a combination of analytical and numerical techniques to analyse the Ericksen--Leslie equations governing the fluid velocity and pressure and the director orientation in cases when both the aspect ratio of the channel and the distortion of the director field are small. We demonstrate a variety of flow and director-orientation patterns occurring in different parameter regimes. In the limit of weak flow effects flow alignment does not occur and the appropriate solution of the governing equations is found explicitly. In the limit of strong flow effects flow alignment occurs and orientational boundary layers exist near the substrate and near the blade, and in addition, an orientational internal layer may also exist within which the director orientation changes from +theta_0 to -theta_0 where theta_0 is the flow-alignment angle.
机译:受工业上重要的刀片涂覆和液晶材料腔填充工艺的影响,我们考虑了向列型液晶薄膜在薄膜中稳定,二维剪切驱动(Couette)和压力驱动(平面Poiseuille)流动。在规定形状的固定刀片和平面基板之间形成的缓慢变化的通道。具体地,由于基底以恒定速度平行于其自身的运动,叶片涂覆促进了剪切驱动流的研究,而由于施加的压降,空腔填充促进了压力驱动流的研究。当通道的纵横比和指向矢场的变形都较小时,我们使用分析和数值技术的组合来分析控制流体速度,压力和指向矢方向的Ericksen-Leslie方程。我们演示了在不同的参数体制中发生的各种流动和指向导向模式。在弱流动效应的极限下,不会发生流动对准,并且明确找到了控制方程式的适当解。在强流动效应的限制下,发生流向对准,并且在基板附近和叶片附近存在定向边界层,此外,定向内层也可能存在,在该定向内层中,指向矢方向从+ theta_0变为-theta_0,其中theta_0是流量对准角。

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