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Influence of Gas-Solid Kinetic Energy Exchange Processes on Gas Effusion from Slitpores in Non-equilibrium Molecular Dynamics Simulations

机译:气固动能交换过程对非平衡分子动力学模拟中狭缝气体扩散的影响

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摘要

The boundary-driven type non-equilibrium molecular dynamics (BD-NEMD) simulations have been carried out to clarify the influence of solid flexibility on gas effusion through a slitpore, by using a rigid solid model (R-model) and a flexible solid model (F-model). The LJ potential particles with parameters of argon are chosen for both the effusing gas molecules and the solid atoms. It is found that the R-model combined with a velocity scaling technique provides a reasonable effusion flux, probably a maximum in magnitude, compared with the fluxes calculated from the F-model without a fictitious thermostat (a velocity scaling) for effusing molecules. In the F-model, temperature lowering has been observed at the pore exit, being enhanced with an increase in the strength of springs that unite the solid atoms. This observation indicates that the molecules escaping from the pore exit take the excess kinetic energy for evaporation from solid atoms or surrounding molecules, which results in the low exit temperature, and that the rate of gas-solid kinetic energy exchange decreases with increasing spring strength (i.e. decreasing solid flexibility). It is suggested that the effusion flux is influenced by two factors: the solid flexibility and the molar potential energy in the pore.
机译:通过使用刚性固体模型(R模型)和柔性固体模型,进行了边界驱动型非平衡分子动力学(BD-NEMD)模拟,以阐明固体柔性对通过细孔的气体渗出的影响。 (F型)。为排放气体分子和固体原子均选择具有氩气参数的LJ势粒子。已发现,与不带虚拟恒温器(速度缩放)的F模型所计算的通量相比,R模型与速度缩放技术相结合可提供合理的喷射通量,可能在大小上最大。在F模型中,在孔出口处观察到温度降低,随着结合固体原子的弹簧强度的增加而增强。该观察结果表明,从孔隙出口逸出的分子吸收了从固体原子或周围分子蒸发而来的多余动能,从而导致出口温度低,并且气固动能交换的速率随着弹簧强度的增加而降低(即降低固体柔韧性)。提出了渗出通量受两个因素影响:固体柔韧性和孔隙中的摩尔势能。

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