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具有棘轮表面的微通道中非平衡气体流动的数值研究。

Numerical study of nonequilibrium gas flow in a microchannel with a ratchet surface.

作者信息

Zhu Lianhua, Guo Zhaoli

机构信息

State Key Laboratory of Coal Combustion, School of Power and Energy Engineering, Huazhong University of Science and Technology, Wuhan, 430074, China.

出版信息

Phys Rev E. 2017 Feb;95(2-1):023113. doi: 10.1103/PhysRevE.95.023113. Epub 2017 Feb 23.

Abstract

The nonequilibrium gas flow in a two-dimensional microchannel with a ratchet surface and a moving wall is investigated numerically with a kinetic method [Guo et al., Phys. Rev. E 91, 033313 (2015)]PLEEE81539-375510.1103/PhysRevE.91.033313. The presence of periodic asymmetrical ratchet structures on the bottom wall of the channel and the temperature difference between the walls of the channel result in a thermally induced flow, and hence a tangential propelling force on the wall. Such thermally induced propelling mechanism can be utilized as a model heat engine. In this article, the relations between the propelling force and the top wall moving velocity are obtained by solving the Boltzmann equation with the Shakhov model deterministically in a wide range of Knudsen numbers. The flow fields at both the static wall state and the critical state at which the thermally induced force cancels the drag force due to the active motion of the top wall are analyzed. A counterintuitive relation between the flow direction and the shear force is observed in the highly rarefied condition. The output power and thermal efficiency of the system working as a model heat engine are analyzed based on the momentum and energy transfer between the walls. The effects of Knudsen number, temperature difference, and geometric configurations are investigated. Guidance for improving the mechanical performance is discussed.

摘要

采用动力学方法[Guo等人,《物理评论E》91, 033313 (2015)]PLEEE81539 - 375510.1103/PhysRevE.91.033313对具有棘轮表面和移动壁面的二维微通道中的非平衡气体流动进行了数值研究。通道底壁上周期性不对称棘轮结构的存在以及通道壁面之间的温差导致了热致流动,进而在壁面上产生切向推进力。这种热致推进机制可被用作模型热机。在本文中,通过在广泛的克努森数范围内确定性地求解带有沙科夫模型的玻尔兹曼方程,得到了推进力与顶壁移动速度之间的关系。分析了静态壁面状态以及热致力抵消由于顶壁主动运动产生的阻力的临界状态下的流场。在高度稀薄条件下观察到了流动方向与剪切力之间违反直觉的关系。基于壁面之间的动量和能量传递,分析了作为模型热机运行的系统的输出功率和热效率。研究了克努森数、温差和几何构型的影响。讨论了改善机械性能方面的指导意见。

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