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A thermal immiscible multiphase flow simulation by lattice Boltzmann method

机译:格子Boltzmann方法模拟热不混溶多相流

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The lattice Boltzmann (LB) method, as a mesoscopic approach based on the kinetic theory, has been significantly developed and applied in a variety of fields in the recent decades. Among all the LB community members, the pseudopotential LB plays an increasingly important role in multiphase flow and phase change problems simulation. The thermal immiscible multiphase flow simulation using pseudopotential LB method is studied in this work. The results show that it is difficult to achieve multi-bubble/droplet coexistence due to the unphysical mass transfer phenomenon of "the big eat the small" - the small bubbles/droplets disappear and the big ones getting bigger before a physical coalescence when using an internal energy based temperature equation for single-component multiphase (SCMP) pseudopotential models. In addition, this unphysical effect can be effectively impeded by coupling an entropy-based temperature field, and the influence on density fields with different energy equations are discussed. The findings are identified and reported in this paper for the first time. This work gives a significant inspiration for solving the unphysical mass transfer problem, which determines whether the SCMP LB model can be used for multi-bubble/droplet systems.
机译:近几十年来,作为基于动力学理论的介观方法的格子玻尔兹曼(LB)方法已得到显着发展,并已应用于各种领域。在所有LB社区成员中,伪势LB在多相流和相变问题模拟中起着越来越重要的作用。在这项工作中,研究了使用伪电势LB方法进行的热不混溶多相流模拟。结果表明,由于“大吃小”的非物理传质现象,很难实现多气泡/小液滴共存-使用时,小气泡/小液滴消失,大气泡在物理合并之前变大。基于内部能量的温度方程,用于单组分多相(SCMP)伪电势模型。另外,通过耦合基于熵的温度场可以有效地阻止这种非物理效应,并讨论了不同能量方程对密度场的影响。首次发现并报告了这些发现。这项工作为解决非物理传质问题提供了重要的启示,该问题决定了SCMP LB模型是否可用于多气泡/液滴系统。

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