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首页> 外文期刊>Physica, A. Statistical mechanics and its applications >A calculation of gaseous slip velocity and microscale flow fields from a molecular-continuum matching analysis
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A calculation of gaseous slip velocity and microscale flow fields from a molecular-continuum matching analysis

机译:从分子连续匹配分析计算气体滑移速度和微尺度流场

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Small-scale gaseous flows cannot be described as a continuum, especially at boundaries where molecular interactions of the fluid with a wall takes place. Work has been done to match molecular dynamics simulations near a wall to continuum flow away from a wall [S.T. O'Connel, P.A. Thompson, Phys. Rev. E 52, R5792.2.]. Microscale flow fields have also been calculated by solving the Navier-Stokes equations with a Maxwellian slip boundary condition [E.B. Arkilic et al., J. Microelectromech. Systems 6 (2) (1997) 167-178.]. This paper, in two dimensions, calculates microscale flow fields and slip velocities ab initio by matching, with a novel computer algorithm, analysis of molecular interaction with boundaries to continuum flow away from the boundaries for wall-velocity-step-jumped-time-varying Poiseuille flow. Slip velocities are also calculated in the steady-state case for Poiseuille flow. Drift velocities approximately one mean free path from the walls are found to be between 20-30% of the maximum flow field velocity along the length of the channel for transient analysis of helium gas and 5-36% of the maximum velocity for steady-state analysis of various gases. These ratios are consistent with past calculations of flow fields calculated with a prescribed Maxwellian slip boundary condition (E.B. Arkilic et al., 1997.). (C) 2001 Elsevier Science B.V. All rights reserved. [References: 12]
机译:小规模的气流不能被描述为连续体,特别是在流体与壁发生分子相互作用的边界。已经完成工作以匹配壁附近的分子动力学模拟,以使连续的流体从壁上流走[S.T. O'Connel,宾夕法尼亚州汤普森物理学修订版E 52,R5792.2。]。通过求解具有麦克斯韦滑移边界条件的Navier-Stokes方程,还可以计算出微尺度的流场[E.B. Arkilic等,J.Microelectromech。系统6(2)(1997)167-178。]。本文从二维出发,通过使用新型计算机算法匹配分子与边界的相互作用以连续流动远离边界进行壁速度-跃变时变,从头计算微尺度的流场和滑移速度。泊流。在泊松流的稳态情况下,还可以计算滑移速度。漂移速度大约是从壁的平均自由程,在沿着氦气瞬态分析的通道长度方向上,最大流场速度介于最大流场速度的20%至30%之间,而对于稳态时,最大速度为5-36%之间分析各种气体。这些比率与过去用规定的麦克斯韦滑移边界条件计算出的流场的计算结果是一致的(E.B. Arkilic et al。,1997.)。 (C)2001 Elsevier Science B.V.保留所有权利。 [参考:12]

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