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Gas Mixing and Final Mixture Composition Control in Simple Geometry Micro-mixers via DSMC Analysis

机译:通过DSMC分析在简单几何微型混合器中控制气体混合和最终混合物的成分

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摘要

The mixing process of two pressure driven steady-state rarefied gas streams flowing between two parallel plates was investigated via DSMC (Direct Simulation Monte Carlo) for different combinations of gases. The distance from the inlet, where the associated relative density difference of each species is minimized and the associated mixture homogeneity is optimized, is the so-called mixing length. In general, gas mixing progressed very rapidly. The type of gas surface interaction was clearly the most important parameter affecting gas mixing. As the reflection became more specular, the mixing length significantly increased. The mixing lengths of the HS (hard sphere) and VHS (variable hard sphere) collision models were higher than those of the VSS (variable soft sphere) model, while the corresponding relative density differences were negligible. In addition, the molecular mass ratio of the two components had a minor effect on the mixing length and a more important effect on the relative density difference. The mixture became less homogenous as the molecular mass ratio reduced. Finally, varying the channel length and/or the wall temperature had a minor effect. Furthermore, it was proposed to control the output mixture composition by adding in the mixing zone, the so-called splitter, separating the downstream flow into two outlet mainstreams. Based on intensive simulation data with the splitter, simple approximate expressions were derived, capable of providing, once the desired outlet mixture composition was specified, the correct position of the splitter, without performing time consuming simulations. The mixing analysis performed and the proposed approach for controlling gas mixing may support corresponding experimental work, as well as the design of gas micro-mixers.
机译:通过DSMC(直接模拟蒙特卡洛)研究了两种气体在两种平行板之间流动的压力驱动稳态稀有气流的混合过程,以了解不同的气体组合。距入口的距离(所谓的混合长度)是指混合距离,在该距离处,每种物质的相关相对密度差被最小化,相关混合物的均匀性得到优化。通常,气体混合进展非常迅速。气体表面相互作用的类型显然是影响气体混合的最重要参数。随着反射变得更加镜面反射,混合长度显着增加。 HS(硬球)和VHS(可变硬球)碰撞模型的混合长度高于VSS(可变软球)碰撞模型的混合长度,而相应的相对密度差可忽略不计。另外,两种组分的分子量比对混合长度的影响较小,而对相对密度差的影响较大。随着分子量比率降低,混合物变得不太均匀。最后,改变通道长度和/或壁温影响很小。此外,提出了通过在混合区中添加所谓的分离器来控制输出混合物组成的方法,将下游流分成两个出口主流。基于带有分离器的大量模拟数据,可以得出简单的近似表达式,一旦指定了所需的出口混合物成分,就可以提供分离器的正确位置,而无需执行耗时的模拟。进行的混合分析和所提出的控制气体混合的方法可支持相应的实验工作,以及气体微型混合器的设计。

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