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Numerical simulation of gas flow in rough microchannels: hybrid kinetic-continuum approach versus Navier-Stokes

机译:粗糙微通道中气体流动的数值模拟:混合动力学-连续谱方法与Navier-Stokes

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摘要

The flow field in a rough microchannel is numerically analyzed using a hybrid solver, dynamically coupling kinetic and Navier-Stokes solutions computed in rarefied and continuum subareas of the flow field, respectively, and a full Navier-Stokes solver. The rough surface is configured with triangular roughness elements, with a maximum relative roughness of 5 % of the channel height. The effects of Mach number, Knudsen number (or Reynolds number) and roughness height are investigated and discussed in terms of Poiseuille number and mass flow rate. Discrepancies between full Navier-Stokes and hybrid solutions are analyzed, assessing the range of validity of Navier-Stokes equations provided with first-order slip boundary conditions for modeling gas flow along a rough surface. Results indicate that the roughness increases Poiseuille number and decreases mass flux in comparison with those for the smooth microchannel. Increasing rarefaction results in further enhancement of roughness effect. At the same time, the compressibility effect is more noticeable than the roughness one, although the compressibility effect is alleviated by increase in the rarefaction. It was found that, although the Navier-Stokes solution of the flow in a smooth channel is accurate up to Kn = 0.1, when relative roughness height is higher than 1.25 % significant errors already appear at Kn = 0.02.
机译:使用混合求解器,分别在流场的稀疏和连续子区域中计算的动力学和Navier-Stokes解动态耦合以及完整的Navier-Stokes求解器,对粗糙的微通道中的流场进行数值分析。粗糙表面配置有三角形粗糙度元素,最大相对粗糙度为通道高度的5%。对马赫数,克努森数(或雷诺数)和粗糙度高度的影响进行了研究,并讨论了泊瓦数和质量流率。分析了完整的Navier-Stokes和混合解之间的差异,评估了带有一阶滑动边界条件的Navier-Stokes方程的有效性范围,该条件用于模拟沿粗糙表面的气流。结果表明,与光滑的微通道相比,粗糙度增加了泊瓦数,并降低了质量通量。稀疏度的增加导致粗糙度效果的进一步增强。同时,可压缩性的效果比粗糙性更明显,尽管可压缩性的效果由于稀疏性的增加而减轻了。已经发现,尽管在光滑通道中流动的Navier-Stokes解在Kn = 0.1时是精确的,但当相对粗糙度高度大于1.25%时,在Kn = 0.02时已经出现了明显的误差。

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