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Rarefaction and external force effects on gas microflow in a lid-driven cavity

机译:盖层驱动型腔中气体的微反射和外力作用

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摘要

In this paper, the regularized 13-moment approach (R13) is used to investigate the rarefaction effect on rarefied gas flow within a lid-driven cavity. We will discuss the validity domain of the Navier-Stokes and Fourier (NSF) solutions using the first order of velocity slip and temperature jump boundary conditions (NSF) and the regularized 10-moments (R10) in slip and early transition regime. The effect of an external body force is examined in different directions according to the cavity inclination angle. A Maxwell monatomic gas is considered to study the flow and thermal characteristics within the lid-driven cavity. The NSF method correctly describes the velocity profiles, but it captures only the trend of other macroscopic parameters. The NSF heat flux, which is found to be from the hot regions to the cold ones, loses its validity in the slip regime and beyond to predict an inverted heat flux predicted by both regularized models. Contrary to the R10, which can capture the rarefaction effect in the whole slip regime. The dimensionless shear stress tends to grow by increasing the rarefaction along the moving wall. The external body force affects the shear stress and velocity streamlines symmetry and creates an additional vortex, depending on the inclination angle.
机译:在本文中,使用正则化13矩方法(R13)来研究稀疏化对盖子驱动腔内稀薄气体流的影响。我们将讨论滑移和早期过渡状态下使用速度滑移和温度跃变边界条件(NSF)的一阶和正则化10矩(R10)的Navier-Stokes和Fourier(NSF)解的有效性域。根据腔体的倾斜角度,在不同方向上检查了外力的影响。考虑使用麦克斯韦(Maxwell)单原子气体研究盖驱动腔内的流动和热特性。 NSF方法可以正确描述速度曲线,但它只能捕获其他宏观参数的趋势。 NSF热通量(从热区到冷区)在滑移状态中失去了有效性,甚至无法预测两个正则化模型预测的反向热通量。与R10相反,R10可以捕获整个滑动状态下的稀疏效果。无量纲的剪应力趋于通过增加沿移动壁的稀疏度而增大。外部力影响剪切应力和速度流线的对称性,并根据倾斜角度产生附加的涡流。

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