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疏水表面流体流动特性的格子Boltzmann方法模拟 被引量:3

Lattice Boltzmann simulation of liquid flow characteristics of hydrophobic surfaces
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摘要 采用格子Boltzmann方法研究了微形貌对固体表面润湿性的影响,在此基础上进一步模拟了具有微形貌的疏水表面通道内的流体流动,从法向速度、剪应力、滑移速度等角度分析了疏水表面的流场特性,揭示了疏水表面滑移流动的产生机制。结果表明,疏水表面的滑移流动是由低表面能作用和微形貌共同引起的。具有微形貌的疏水表面比光滑疏水表面具有更好的减阻效果,原因在于微形貌能够驻留气体,形成的气液自由剪切面加剧了疏水表面的滑移流动,最大滑移速度可以达到主流平均速度的50%左右。 The influence of microcosmic topography on the surface wettability is investigated using a lattice Boltzmann method, and then the liquid flow over hydrophobic surfaces with microcosmic topography is sim-ulated in a microchannel. From aspect of normal velocity, shear stress and slip velocity, the flow field char-acteristics of hydrophobic surfaces are analyzed and the generation mechanism of hydrophobic surfaces's slip flow is revealed. The simulation results show that hydrophobic surfaces* slip flow is caused by the low surface energy effect and microcosmic topography together. Hydrophobic surfaces with microcosmic topog-raphy have a better drag reduction effect than smooth hydrophobic surfaces. The reason is that the micro-cosmic topography can retain gas and generate gas-liquid free shear surfaces, which can enhance hydropho-bic surfaces's slip flow and make the maximum slip velocity reach about 50% of the average speed of main-stream.
作者 黄桥高 潘光
出处 《船舶力学》 EI CSCD 北大核心 2016年第10期1211-1218,共8页 Journal of Ship Mechanics
基金 国家自然科学基金(51279165 51109178) 教育部高等学校博士学科点科研基金(20126102120021)
关键词 疏水表面 格子BOLTZMANN方法 微形貌 滑移流动 减阻 hydrophobic surface lattice Boltzmann method microcosmic topography slip flow drag reduction
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  • 1曹炳阳,陈民,过增元.纳米结构表面浸润性质的分子动力学研究[J].高等学校化学学报,2005,26(2):277-280. 被引量:15
  • 2徐超,何雅玲,王勇.纳米通道滑移流动的分子动力学模拟研究[J].工程热物理学报,2005,26(6):912-914. 被引量:31
  • 3曹炳阳,陈民,过增元.纳米通道内液体流动的滑移现象[J].物理学报,2006,55(10):5305-5310. 被引量:47
  • 4Bitsanis I, Magda J J, Tirrell M, et, al. Molecular Dynamics of Flow in Micropores. J. Chem. Phys., 1987,87(3): 1733-1750.
  • 5Thompson P A, Troian S M. A General Boundary Condition for Liquid Flow at Solid Surfaces. Nature, 1997,389(6649): 360-362.
  • 6Cieplak M, Koplik J, Banavar R. Boundary Conditions at a Fluid-Solid Interface. Phy. Rev. Lett., 2001, 86(5):803-806.
  • 7Rapaport DC. The Art of Molecular Dynamics Simulation. Cambridge: Cambridge University Press, 1995. 12-190.
  • 8Schnell E 1956 J. Appl. Phys. 27 1149
  • 9Churaev N Vet al 1984 J. Colloid Interface Sci. 97 574
  • 10Squires T M and Quake S R 2005 Rev. Mod. Phys. 77 977

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