Numerical research of characteristic mixing times of isothermal three-component steam-gas systems

IF 0.3 Q4 PHYSICS, MULTIDISCIPLINARY
A. Zhussanbayeva, V. Mukamedenkyzy, V. Kossov, A. Akzholova
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引用次数: 0

Abstract

Multicomponent diffusion in gases is characterized by a number of effects that are not observed in binary diffusion. Analysis of existing works shows that convective instability may occur in some systems with significantly different diffusion coefficients with certain geometric and thermophysical characteristics. Stability analysis allows determining the spectrum of parameters at which a transition from a diffusive state to a convective is possible. However, this approach does not allow the researchers to investigate the dynamics of the process. Therefore, this work aims to describe emergence and evolution of convective flows in threecomponent systems and assess the influence of the initial composition on the occurrence of concentration gravitational convection. The main part of the work presents a mathematical model describing the occurrence of convective flows based on the splitting scheme according to physical parameters. Numerical data on the concentration fields of the gas with the highest molecular weight at various time points is obtained. It is established that curvature of the isoconcentration lines of the diffusing components can be associated with instability of the mechanical equilibrium of the system. Degree of curvature is determined by the initial concentration of components of the mixture. The obtained data can be used to determine the main characteristics of mass transfer used in calculations related to combined heat and mass transfer in a wide range of thermophysical parameters.
等温三组分蒸汽-气体系统特征混合次数的数值研究
气体中的多组分扩散具有在二元扩散中观察不到的许多效应。对已有文献的分析表明,在某些具有一定几何和热物理特征的扩散系数差异较大的系统中可能会出现对流不稳定性。稳定性分析可以确定从扩散状态过渡到对流状态的参数谱。然而,这种方法不允许研究人员调查这一过程的动力学。因此,本文旨在描述三组分体系对流的产生和演变,并评估初始组分对浓重力对流发生的影响。本文的主要部分是基于物理参数分裂格式,提出了描述对流发生的数学模型。得到了各时间点最高分子量气体浓度场的数值数据。确定了扩散组分等浓度线的曲率与系统力学平衡的不稳定性有关。曲率度由混合物组分的初始浓度决定。所获得的数据可用于确定在广泛的热物理参数范围内与热和传质有关的计算中使用的传质的主要特征。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
自引率
50.00%
发文量
32
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