首页> 外文会议>ASME international mechanical engineering congress and exposition;IMECE2011 >HYDROPHOBICITY OF HIERARCHICAL STRUCTURED SUPER-HYDROPHOBIC SURFACES WITH THE SECONDARY PILLARS; A LATTICE BOLTZMANN METHOD WITH HIGH-DENSITY RATIO
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HYDROPHOBICITY OF HIERARCHICAL STRUCTURED SUPER-HYDROPHOBIC SURFACES WITH THE SECONDARY PILLARS; A LATTICE BOLTZMANN METHOD WITH HIGH-DENSITY RATIO

机译:带有次级支柱的分层结构超疏水表面的疏水性;高密度比的格子Boltzmann方法

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This paper studies the enhanced super-hydrophobicity on surfaces with hierarchical textures. Surface roughness increases the Contact angle(CA). Recently hierarchical structure surface, which is secondary structures established on the simple pillars or pyramids array, has gained lot of interest from researchers because hydrophobicity of hierarchical structure was found to be greater than in simple structure. In this paper, CA for two surface cases are measured with the computational fluid dynamics (CFD) modeling, known as lattice Boltzmann method {LBM). The first case is "simple structure", which is composed of square cross section pillar array. The second one is "hierarchical structure", which is composed of secondary pillar structure added on the base pillar array. Secondary pillar structure is comparatively small, about 50-100 times smaller than base pillar. Simulation of water droplets, which are statically placed on each of the surfaces, is carried out using the projection method of LBM. Projection method is used to in this study to be able to model the large density difference between air and water. Two phase immiscible fluids flow consisting of air and water (density ratio of air to water = 1:1000) is built in 3D space by using the projection method. CAs and the Cassie, Wenzel regime characteristic for hierarchical structured surface case are compared to that of simple structured surface. We were succeeded in quantifying the benefit of having hierarchical textures; the addition of the secondary structure enhances both the apparent contact angle and the robustness of the non- wetting regime.
机译:本文研究具有分层纹理的表面上增强的超疏水性。表面粗糙度会增加接触角(CA)。近年来,由于发现分层结构的疏水性大于简单结构中的疏水性,因此分层结构表面是建立在简单的柱状或金字塔形阵列上的二级结构,引起了研究人员的极大兴趣。在本文中,使用计算流体力学(CFD)建模方法(称为格子Boltzmann方法(LBM))来测量两个表面情况下的CA。第一种情况是“简单结构”,它由方形截面的柱状阵列组成。第二个是“层次结构”,它由添加在基础支柱阵列上的辅助支柱结构组成。二级支柱结构相对较小,比基础支柱小约50-100倍。使用LBM的投影方法对静态放置在每个表面上的水滴进行模拟。在这项研究中,使用投影方法能够对空气和水之间的大密度差异进行建模。使用投影方法在3D空间中建立了由空气和水组成的两相不混溶流体流(空气与水的密度比= 1:1000)。将CAs和用于分层结构化表面情况的Cassie,Wenzel机制特征与简单结构化表面的特征进行比较。我们成功地量化了使用分层纹理的好处;二级结构的添加既增强了表观接触角,又增强了非润湿状态的坚固性。

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