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Spontaneous electrorheological effect in nematic liquid crystals under Taylor-Couette flow configuration

机译:泰勒 - 汤流动构型下向甲型液晶中的自发电风学效应

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摘要

Electrorheological (ER) characteristics of Nematic Liquid Crystals (NLCs) have been a topic of immense interest in the field of soft matter physics owing to its rheological modulation capabilities. Here we explore the augmentation in rheological characteristics of the nematic fluid confined within the annular region of the concentric cylindrical space with an Electrical Double Layer (EDL) induced at the fluid-substrate interface due to certain physico-chemical interactions. Using a Taylor-Couette flow configuration associated with an EDL induced at the inner cylinder wall, we show that a spontaneous electrorheological effect is generated owing to the intrinsic director anisotropy and structural order of complex nematic fluids. We seek to find the enhancement in torque transfer capability due to the inherent electrorheological nature of the nematic medium, apart from exploiting the innate nature of such homogeneous media to remain free of coagulation, a fact which makes it an excellent candidate for the applications in microfluidic environment. Our analysis reveals that with stronger induced charge density within the EDL, the apparent viscosity enhances, which, in turn, augments torque transfer across the concentric cylinder. The velocity profile tends to flatten in comparison to the classical circular Couette flow in annular geometry as one increases the surface charge density. We further observe a more pronounced ER effect for the nematic medium having larger electrical permittivity anisotropy. Besides the torque transfer qualifications, we also explore the distinct scenarios, wherein the same NLC medium exhibits shear thinning and shear thickening characteristics. The present configuration of the efficient torque transfer mechanism may be proficiently downscaled to micro-level and is relevant in the fabrication of micro-clutch and micro-dampers. Published by AIP Publishing.
机译:向甲型液晶(NLC)的电静学(ER)特性(NLC)由于其流变调节能力而言,柔软物理学领域是巨大兴趣的主题。在这里,我们探讨了在同心圆柱形空间的环形区域内限制在同心圆柱形空间的环形区域内的流变特性的增强,其由于某些物理化学相互作用而在流体 - 基板界面处诱导的电双层(EDL)。使用与在内筒壁上的EDL相关的泰勒沟流程配置,我们表明由于内在的主导导向性各向异性和复合列目液的结构顺序,产生了自发的电流效应。除了利用这种均匀介质的先天性之外,我们寻求扭矩传递能力的增强功能,除了利用这种均匀介质的先天性,仍然是没有凝结的事实,这使其成为微流体应用的优异候选者环境。我们的分析表明,在EDL内具有更强的感应电荷密度,表观粘度增强,又增加了在同心圆柱体上增加扭矩传递。与环形几何形状中的经典圆形耦合流相比,速度曲线趋于平坦地变平,因为一个是增加表面电荷密度。我们进一步观察到具有较大电介质各向异性的向列培养基更明显的ER效果。除了扭矩传递资格之外,我们还探讨了不同的情景,其中相同的NLC培养基表现出剪切稀释和剪切增厚特性。现有的有效扭矩传递机构的配置可以熟练地倾斜到微观水平,并且在微腔和微阻尼器的制造中是相关的。通过AIP发布发布。

著录项

  • 来源
    《Physics of fluids 》 |2017年第9期| 共15页
  • 作者单位

    Indian Inst Technol Dept Mech Engn Kharagpur 702321 W Bengal India;

    Indian Inst Technol Dept Mech Engn Kharagpur 702321 W Bengal India;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 流体力学 ;
  • 关键词

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