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Second-order slip condition considering Langmuir isothermal adsorption for rarefied gas microflows

机译:考虑Langmuir等温可吸附稀释气体微流量的二阶滑动条件

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Effect of the slip boundary condition on rarefied gas flow simulations plays an important role to understand the behaviour of gas microflows in MEMS. Several second-order slip conditions were proposed by the models of the kinetic theory of gases to simulate the rarefied gas microflows, in which the so-called classical second-order slip condition was derived from the Karniadakis et al. model. In this paper, a new second-order slip condition is proposed to employ with the Navier-Stokes-Fourier equations for simulating the rarefied gas flows in microchannels. It is derived by combining the Langmuir isothermal adsorption and the Karniadakis et al. model, with the aim of achieving a more realistic physical model. The pressure-driven back-forward-step, the Couette and pressure-driven Poiseulle rarefied gas flows in microchannels are investigated to validate our new second-order slip condition. Slip velocities using our new second-order slip condition are better than those using the conventional Maxwell and the so-called classical second-order slip conditions, and are in very good agreement with the DSMC data for all cases considered.
机译:滑动边界条件对稀土气流模拟的影响起到了解MEMS中气体微流的行为的重要作用。通过气体动力学理论的模型提出了几个二阶滑动条件,以模拟稀土气体微流量,其中所谓的经典二阶滑动条件来自卡尼亚达岛等。模型。在本文中,提出了一种新的二阶滑动条件,用于采用Navier-Stokes-Fourier方程,用于模拟微通道中的稀土气体流动。它是通过组合Langmuir等温吸附和Karniadakis等人来源的。模型,目的是实现更现实的物理模型。调查压力驱动的前前进步骤,CONETE和压力驱动的泛氏稀释气体在微通道中流动,以验证我们的新二阶滑动条件。使用我们新的二阶滑动条件的滑动速度优于使用传统的Maxwell和所谓的经典二阶滑动条件,并且与考虑所有案例的DSMC数据非常好。

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