首页> 外文会议>International Conference on Nanochannels, Microchannels and Minichannels >NUMERICAL MODELS OF GAS FLOW AND HEAT TRANSFER IN MICROSCALE CHANNELS: CAPTURING RAREFACTION BEHAVIOUR USING A CONSTITUTIVE SCALING APPROACH
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NUMERICAL MODELS OF GAS FLOW AND HEAT TRANSFER IN MICROSCALE CHANNELS: CAPTURING RAREFACTION BEHAVIOUR USING A CONSTITUTIVE SCALING APPROACH

机译:微尺度通道中气流和传热的数值模型:使用本构缩放方法捕获稀疏行为

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In this paper we discuss the physics of rarefied gas flows at the micro-scale, including discontinuities of momentum and energy at solid boundaries, and the Knudsen layer (a region within one to two mean free paths of any solid surface where non-equilibrium flow features are dominant.) We describe how scaling the constitutive relations of the Navier-Stokes-Fourier equation set can capture key rarefaction behaviour observed in gas microsystems, and how a new implementation of this approach in fully compressible, non-isothermal CFD facilitates the analysis of "real-world" engineering problems. Details of our implementation are given, as are the results of a compressible Couette flow case study, successfully validated against available data sources.We also discuss the relative merits of two published constitutive scaling models, comparing their micro-flow predictions for half-space problems, and contrasting their individual means of application. Some practical implications of using constitutive-relation scaling are explained, and some advantages of the technique compared to alternative methods are outlined. To conclude, we examine some limitations of the method, and outline avenues of research that could potentially broaden the scope of what is a flexible and efficient approach to gas microsystem design using CFD.
机译:在本文中,我们讨论了微尺寸下稀土气体流量的物理,包括在固体边界处的动量和能量的不连续性,以及knudsen层(一个到非平衡流动的任何固体表面的平均自由路径内的区域。特征是占主导地位的。)我们描述了Navier-Stokes-Fourier方程式集的构成关系如何捕获在气体微系统中观察到的关键稀疏行为的缩放,以及如何在完全可压缩,非等温CFD中实现这种方法的新实现有助于分析“真实世界”工程问题。给出了我们实现的详细信息,因为可压缩Coute流程研究的结果,成功验证了可用的数据源。我们还讨论了两个公布的构成缩放模型的相对优点,比较了它们对半空间问题的微流量预测,并对比他们的个人申请手段。解释了使用组成关系缩放的一些实际意义,概述了与替代方法相比技术的一些优点。为了得出结论,研究方法的一些局限性,以及研究的概要途径,可能会促进使用CFD的气体微系统设计的灵活和有效的方法的范围。

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