Evaluating the performance of the two-phase flow solver interFoam

S. S. Deshpande, L. Anumolu, M. Trujillo
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引用次数: 658

Abstract

The performance of the open source multiphase flow solver, interFoam, is evaluated in this work. The solver is based on a modified volume of fluid (VoF) approach, which incorporates an interfacial compression flux term to mitigate the effects of numerical smearing of the interface. It forms a part of the C + + libraries and utilities of OpenFOAM and is gaining popularity in the multiphase flow research community. However, to the best of our knowledge, the evaluation of this solver is confined to the validation tests of specific interest to the users of the code and the extent of its applicability to a wide range of multiphase flow situations remains to be explored. In this work, we have performed a thorough investigation of the solver performance using a variety of verification and validation test cases, which include (i) verification tests for pure advection (kinematics), (ii) dynamics in the high Weber number limit and (iii) dynamics of surface tension-dominated flows. With respect to (i), the kinematics tests show that the performance of interFoam is generally comparable with the recent algebraic VoF algorithms; however, it is noticeably worse than the geometric reconstruction schemes. For (ii), the simulations of inertia-dominated flows with large density ratios yielded excellent agreement with analytical and experimental results. In regime (iii), where surface tension is important, consistency of pressure–surface tension formulation and accuracy of curvature are important, as established by Francois et al (2006 J. Comput. Phys. 213 141–73). Several verification tests were performed along these lines and the main findings are: (a) the algorithm of interFoam ensures a consistent formulation of pressure and surface tension; (b) the curvatures computed by the solver converge to a value slightly (10%) different from the analytical value and a scope for improvement exists in this respect. To reduce the disruptive effects of spurious currents, we followed the analysis of Galusinski and Vigneaux (2008 J. Comput. Phys. 227 6140–64) and arrived at the following criterion for stable capillary simulations for interFoam: where . Finally, some capillary flows relevant to atomization were simulated, resulting in good agreement with the results from the literature.
评价两相流求解器interFoam的性能
本文对开源多相流求解器interFoam的性能进行了评价。该求解器基于改进的流体体积(VoF)方法,该方法纳入了界面压缩通量项,以减轻界面数值涂抹的影响。它构成了OpenFOAM的c++库和实用程序的一部分,并且在多相流研究社区中越来越受欢迎。然而,据我们所知,该求解器的评估仅限于对代码用户特别感兴趣的验证测试,其适用于广泛的多相流情况的程度仍有待探索。在这项工作中,我们使用各种验证和验证测试案例对求解器的性能进行了彻底的调查,其中包括(i)纯平流(运动学)的验证测试,(ii)高韦伯数极限下的动力学,以及(iii)表面张力主导流动的动力学。对于(i),运动学测试表明,interFoam的性能与最近的代数VoF算法大致相当;然而,它明显比几何重建方案差。对于(ii),大密度比的惯性主导流动的模拟与分析和实验结果非常吻合。在状态(iii)中,表面张力很重要,压力-表面张力公式的一致性和曲率的准确性很重要,正如Francois等人(2006 J. Comput)所建立的那样。物理学报,213(141-73)。沿着这些思路进行了几次验证测试,主要发现是:(a) interFoam算法确保了压力和表面张力的一致公式;(b)求解器计算的曲率收敛于与解析值略有不同的值(10%),并且在这方面存在改进的余地。为了减少杂散电流的破坏性影响,我们遵循了Galusinski和Vigneaux (2008 J. Comput)的分析。Phys. 227 6140-64),并得出了interFoam稳定毛细管模拟的以下准则:最后,模拟了一些与雾化有关的毛细管流动,结果与文献结果吻合较好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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