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Mathematical Model of Foam Flowing Characteristics by Snap-Off Mechanisms at Steady State in Porous Media

机译:多孔介质中稳态吸附机制的泡沫流动特性数学模型

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Flow characteristics and regeneration processes of foams were influenced by lamella properties and pore-throat structure in porous media. In this article, porous media was simplified as a bunch of constricted capillary tubes according to grain size, pore-throat radius, and immobile water saturation in porous media. Based on an analysis of forces upon liquid lamella, a mathematical model of foam migration and regeneration at steady state was established according to the mass conservation law and the momentum conservation law in porous media. The model could be used to calculate some important parameters in porous media, such as pressure distribution, shearing stress, lamella morphology, liquid-layer thickness, regeneration bubble size, etc. A series of flow experiments were carried out to investigate the influence of liquid properties and pore-throat structure on flow characteristics and resistance behavior of foams in porous media. The experimental results showed that pressure distribution monotonously decreased along porous media. The theoretical results were in good agreement with the experimental results. Foam structure, that is, foam quality was an important factor upon foam resistance behavior in porous media. The strongest resistance ability of foams was achieved at foam quality of 85% in porous media.
机译:泡沫的流动特性和再生过程受薄层特性和多孔介质中孔喉结构的影响。在本文中,根据颗粒尺寸,孔喉半径和多孔介质中固定的水饱和度,将多孔介质简化为一束收缩的毛细管。在分析液体薄片作用力的基础上,根据质量守恒定律和多孔介质动量守恒定律,建立了稳态下泡沫迁移和再生的数学模型。该模型可用于计算多孔介质中的一些重要参数,例如压力分布,剪切应力,薄片形态,液层厚度,再生气泡尺寸等。进行了一系列流动实验,研究了液体的影响。特性和孔喉结构对多孔介质中泡沫流动特性和阻力行为的影响。实验结果表明,沿多孔介质压力分布单调下降。理论结果与实验结果吻合良好。泡沫结构,即泡沫质量是影响多孔介质中泡沫抵抗行为的重要因素。在多孔介质中,泡沫质量达到85%时,泡沫具有最强的抵抗能力。

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