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Numerical study of rising bubbles with path instability using conservative level-set and adaptive mesh refinement

机译:使用保守水平设定和自适应网格改进路径不稳定呼吸泡沫的数值研究

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This paper focuses on three-dimensional direct numerical simulations of rising bubbles in the wobbling regime, and the study of its dynamical behavior for Eotvos number 1 <= Eo <= 10 and Morton number 1e-11 <= M <= 9. The computational methodology is based on a mass Conservative Level-Set method, whereas the spatial discretization of the computational domain employs an Adaptive Mesh Refinement strategy for the reduction of computational resources. The Navier-Stokes equations are discretized using the finite-volume approach on a collocated unstructured mesh; the pressure-velocity coupling is solved using a classical fractional-step projection method. This methodology is applied to a series of verification and validation tests, which are compared with experiments and numerical results from the literature. Finally, buoyancy bubbles rising in the wobbling regime are researched at moderate to high Reynolds numbers (100 < Re <3000). Terminal Reynolds number, drag coefficient and frequency of path oscillations are compared with empirical correlations and numerical studies from the literature. Results show the discharge of alternate oppositely-oriented hairpin vortex structures. Moreover, depending on the characteristics numbers of the system, different path features, bubble shape, and vortical structures in the wake are reported. (C) 2019 Elsevier Ltd. All rights reserved.
机译:本文重点介绍了摆动制度中泡沫上升的三维直接数值模拟,以及对ETVOS号的动态行为的研究<= EO <= 10和MORTON数1E-11 <= 9.计算方法基于质量保守级别设置方法,而计算域的空间离散化采用自适应网格细化策略来减少计算资源。 Navier-Stokes方程是使用合并非结构化网格上的有限体积方法离散化;使用经典的分数步骤投影方法解决了压力 - 速度耦合。该方法应用于一系列验证和验证测试,与实验和文献的数值结果进行比较。最后,在中等至高雷诺数(100

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