Folch R, Tóth-Katona T, Buka A, Casademunt J, Hernández-Machado A
Departament d'Estructura i Constituents de la Matèria, Universitat de Barcelona, Avinguda Diagonal, 647, E-08028-Barcelona, Spain.
Phys Rev E Stat Nonlin Soft Matter Phys. 2001 Nov;64(5 Pt 2):056225. doi: 10.1103/PhysRevE.64.056225. Epub 2001 Oct 25.
Viscous fingering of an air-nematic interface in a radial Hele-Shaw cell is studied when periodically switching on and off an electric field, which reorients the nematic and thus changes its viscosity, as well as the surface tension and its anisotropy (mainly enforced by a single groove in the cell). Undulations at the sides of the fingers are observed that correlate with the switching frequency and with tip oscillations that give maximal velocity to smallest curvatures. These lateral undulations appear to be decoupled from spontaneous (noise induced) side branching. It is concluded that the lateral undulations are generated by successive relaxations between two limiting finger widths. The change between these two selected pattern scales is mainly due to the change in the anisotropy. This scenario is confirmed by numerical simulations in the channel geometry, using a phase-field model for anisotropic viscous fingering.
在径向Hele-Shaw盒中,研究了向列相液晶与空气界面的粘性指进现象。实验中周期性地开启和关闭电场,电场会使向列相重新取向,进而改变其粘度、表面张力及其各向异性(主要由盒中的单凹槽引起)。观察到指状物侧面的波动,这些波动与开关频率以及使最小曲率具有最大速度的尖端振荡相关。这些横向波动似乎与自发(噪声诱导)的侧向分支解耦。得出的结论是,横向波动是由两个极限指宽之间的连续弛豫产生的。这两种选定模式尺度之间的变化主要是由于各向异性的变化。在通道几何结构中使用各向异性粘性指进的相场模型进行的数值模拟证实了这一情况。