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Numerical Study on Bubble Motion in Pore Structure under Microgravity Using the Lattice Boltzmann Method

机译:格子Boltzmann方法数值模拟微重力下孔隙结构中的气泡运动

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This paper reports on a study of bubble motion in a regularly spaced pore structure under microgravity using the lattice Boltzmann method (LBM). Initially, a single bubble's motion is derived; then the simulation is extended for two-bubble dynamics. By considering a gas-liquid two-phase flow, the interaction force (namely the fluid-fluid cohesive force and fluid-solid adhesive force) is derived using the Shan-Chen model with multicomponent single relaxation. This determines the interaction forces governing a single bubble's dynamics in the porous structure. Then the primary parameters that influence bubble motion are studied, such as the bubble's diameter, distance between adjacent cells, arrangement between cells, and the effects of flow-field characteristics on single-bubble motion. The simulation developed for single-bubble motion provides the basis for studying a two-bubble system's motion trajectory and coalescence behavior. By employing the aforementioned analysis, the proposed approach optimizes porous media's structural parameters under microgravity, resulting in increased bubble movement speed and an enhanced two-phase flow in porous media.
机译:本文报道了使用格格玻尔兹曼方法(LBM)在微重力下在规则间隔的孔结构中进行气泡运动的研究。最初,得出单个气泡的运动;然后将仿真扩展为两个气泡动力学。通过考虑气液两相流,使用具有多组分单松弛的Shan-Chen模型推导了相互作用力(即流体-流体内聚力和流体-固体粘合力)。这决定了控制多孔结构中单个气泡动力学的相互作用力。然后研究影响气泡运动的主要参数,例如气泡的直径,相邻气泡之间的距离,气泡之间的排列以及流场特性对单气泡运动的影响。为单气泡运动开发的仿真为研究双气泡系统的运动轨迹和合并行为提供了基础。通过采用上述分析,所提出的方法在微重力下优化了多孔介质的结构参数,从而提高了气泡的运动速度并增强了多孔介质中的两相流动。

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