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Eulerian-Eulerian two-fluid model for laminar bubbly pipe flows: Validation of the baseline model

机译:Laminar泡泡管流量的Eulerian-Eulerian两种流体模型:基线模型的验证

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In the present paper, an Euler-Euler two-fluid model combined with the baseline model, which is a set of closures for the interfacial momentum and turbulence transfer, is validated against experimental data for low Reynolds number bubbly flows in vertical pipes. The model has already been validated for high Reynolds number pipe flows and bubble columns in the previous work (Liao et al., 2019, Chem. Eng. Sci. 202, 55-69). To further substantiate the k - omega SST model with consideration of bubble-induced source included in the baseline model, it is of interest to examine it for low Reynolds number pipe flows, where the bulk is laminar and the transition to turbulence is induced sorely by the agitation of bubbles. Simulations are configured and carried out in the open source CFD code OpenFOAM for eight test cases. Each of them has a different combination of gas and liquid volumetric flow rates. The numerical results are then compared with the experimental data taken from the literature. The comparison is based on different parameters including air void fraction, mean bubble velocity, mean liquid velocity, turbulent kinetic energy and Reynolds shear stress. Although, confirming results with the experimental data are presented but further improvement of the model for turbulent transition as well as inter-phase momentum transfer is necessary. Reliable prediction of the velocity profile in single-phase and extremely sparse bubbly flow cases is shown, and the phase distribution in fully-developed cases is well captured. In addition to the bulk Reynolds number and void fraction, the pipe-to-bubble size ratio is found to have definite influence on the laminar-turbulent transition. (C) 2020 Elsevier Ltd. All rights reserved.
机译:在本文中,与基线模型相结合的欧拉欧拉双流体模型,其是用于界面动量和湍流转移的一组闭合,针对垂直管道中的低雷诺数气泡流动的实验数据验证。该模型已经在上一项工作中的高雷诺数管道流量和泡沫柱(Liao等,2019,Chem。Eng。SCI。202,55-69)。为了进一步考虑基线模型中包括的气泡诱导的源来实质的K - Omega SST模型,可以将其视为低雷诺数管道流动,其中散装是层状物流,并且对其过渡到湍流的过渡气泡的搅拌。在开源CFD代码OpenFoam中配置和执行模拟,以实现八个测试用例。它们中的每一个都具有不同的气体和液体体积流量的组合。然后将数值结果与从文献中取出的实验数据进行比较。比较基于不同的参数,包括空气空隙部分,平均气泡速度,平均液体速度,湍流动能和雷诺剪切应力。尽管提出了使用实验数据的结果,但是进一步改善了湍流过渡的模型以及相互间动量转移。示出了单相和极其稀疏的泡沫流箱中的速度曲线的可靠预测,并且完全发达的情况下的相位分布很好地捕获。除了散装雷诺数和空隙级分之外,发现管 - 气泡尺寸比对层状湍流转变有明确的影响。 (c)2020 elestvier有限公司保留所有权利。

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