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首页> 外文期刊>Journal of Fluids Engineering: Transactions of the ASME >Numerical Investigation of Combined Effects of Rarefaction and Compressibility for Gas Flow in Microchannels and Microtubes
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Numerical Investigation of Combined Effects of Rarefaction and Compressibility for Gas Flow in Microchannels and Microtubes

机译:微通道和微管中气体回流的可压缩性联合作用的数值研究

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摘要

In this paper, first, the Navier-Stokes equations for incompressible fully developed flow in microchannels and microtubes with the first-order and second-order slip boundary conditions are analytically solved. Then, the compressible Navier-Stokes equations are numerically solved with slip boundary conditions. The numerical methodology is based on the control volume scheme. Numerical results reveal that the compressibility effect increases the velocity gradient near the wall and the friction factor. On the other hand, the increment of velocity gradient near the wall leads to a much larger slip velocity than that for incompressible flow with the same value of Knudsen number and results in a corresponding decrement of friction factor. General correlations for the Poiseuille number (fRe), the Knudsen number (Kn), and the Mach number (Ma) containing the first-order and second-order slip coefficients are proposed. Correlations are validated with available experimental and numerical results.
机译:在本文中,首先,分析了具有一阶和二阶滑移边界条件的微通道和微管中不可压缩的完全展开流动的Navier-Stokes方程。然后,利用滑动边界条件对可压缩的Navier-Stokes方程进行数值求解。数值方法基于控制量方案。数值结果表明,压缩效应增加了壁附近的速度梯度和摩擦系数。另一方面,壁附近的速度梯度的增加导致滑移速度比具有相同克努森数值的不可压缩流的滑移速度大得多,并且导致摩擦系数相应减小。提出了包含一阶和二阶滑移系数的泊肃叶数(fRe),克努森数(Kn)和马赫数(Ma)的一般相关性。相关性通过可用的实验和数值结果进行验证。

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