Saint Petersburg Institute for Machine Sciences, Russian Academy of Sciences, Saint Petersburg 199178, Russia.
J Chem Phys. 2010 Jun 14;132(22):224906. doi: 10.1063/1.3435340.
Dynamic field pumping principle has been developed utilizing the interactions of both the director and velocity fields and temperature-redistribution across a two-dimensional (2D) homogeneously aligned liquid crystal (HALC) film under the influence both of a heat flow directed normal to the upper bounding surface, whereas on the lower bounding surface, the temperature is kept constant, and the normally directed electric field, due to electric double layers, i.e., a shielding layers that is naturally created within the liquid crystal (LC) near a charged surfaces. Calculations, based on the nonlinear extension of the classical Ericksen-Leslie theory, shows that the HALC material under the influence of the heat flow start moving in the horizontal direction. After turning off the heat flow, the HALC drop settles down to the rest, and the temperature field across the LC film is finally downfall to the value of temperature on the lower bounding surface. The role of hydrodynamic flow in the relaxation processes of the temperature field to its equilibrium distribution across the 2D HALC film, containing 4-n-pentyl-4(')-cyanobiphenyl, has been investigated for a number of dynamic regimes.
利用指向矢和速度场的相互作用以及在二维(2D)各向同性排列液晶(HALC)薄膜中的温度再分布,开发了动态场泵送原理。在热流垂直于上边界表面的影响下,在下部边界表面,温度保持恒定,由于电双层,即自然在靠近带电表面的液晶(LC)内形成的屏蔽层,正常指向电场。基于经典 Ericksen-Leslie 理论的非线性扩展的计算表明,在热流的影响下,HALC 材料开始在水平方向上移动。关闭热流后,HALC 液滴沉降到静止状态,液晶膜中的温度场最终下降到下边界表面的温度值。研究了在几种动态状态下,对于包含 4-正戊基-4'(-氰基联苯的二维 HALC 膜,在其平衡分布的温度场的弛豫过程中,流体动力学流动的作用。