文丘里腔内云空化流的自适应网格细化研究

IF 2.5 3区 工程技术
Dhruv Apte, Mingming Ge, Olivier Coutier-Delgosha
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引用次数: 0

摘要

非定常云空化流会产生振动、噪声和侵蚀损伤等副作用,严重影响泵、螺旋桨等液压机械的工作效率。模拟这样一个不稳定和高度湍流的流动仍然是一个具有挑战性的问题。本文采用分离涡模拟(DES)模型结合Merkle模型对文丘里腔内的云空化流动进行了计算。采用自适应网格细化(AMR)方法加快了计算速度,研究了文丘里腔内涡的发展机理。结果表明,速度梯度和广义流体元对空化循环中涡的形成有很大影响。此外,通过与高保真度实验数据的对比,利用剖面站在局域尺度上对空化-湍流耦合进行了研究。虽然AMR计算能够很好地预测喉部附近的时间平均速度和湍流相关方面,但由于下游网格细化较粗,它在下游显示出差异,并且与传统网格模拟相比表现不佳。此外,AMR计算无法再现实验中观察到的空腔宽度。因此,虽然AMR承诺通过仅在感兴趣的区域细化网格来显著加快这一过程,但它与传统的空化流计算相对一致。因此,本研究旨在为利用AMR作为加速计算和准确模拟湍流-空化相互作用的工具提供参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigation of cloud cavitating flow in a venturi using adaptive mesh refinement

Unsteady cloud cavitating flow is detrimental to the efficiency of hydraulic machinery like pumps and propellers due to the resulting side-effects of vibration, noise and erosion damage. Modelling such a unsteady and highly turbulent flow remains a challenging issue. In this paper, cloud cavitating flow in a venturi is calculated using the detached eddy simulation (DES) model combined with the Merkle model. The adaptive mesh refinement (AMR) method is employed to speed up the calculation and investigate the mechanisms for vortex development in the venturi. The results indicate the velocity gradients and the generalized fluid element strongly influence the formation of vortices throughout a cavitation cycle. In addition, the cavitation-turbulence coupling is investigated on the local scale by comparing with high-fidelity experimental data and using profile stations. While the AMR calculation is able to predict well the time-averaged velocities and turbulence-related aspects near the throat, it displays discrepancies further downstream owing to a coarser grid refinement downstream and under-performs compared to a traditional grid simulation. Additionally, the AMR calculation is unable to reproduce the cavity width as observed in the experiments. Therefore, while AMR promises to speed the process significantly by refining the grid only in regions of interest, it is comparatively in line with a traditional calculation for cavitating flows. Thus this study intends to provide a reference to employing the AMR as a tool to speed up calculations and be able to simulate turbulence-cavitation interactions accurately.

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来源期刊
自引率
12.00%
发文量
2374
审稿时长
4.6 months
期刊介绍: Journal of Hydrodynamics is devoted to the publication of original theoretical, computational and experimental contributions to the all aspects of hydrodynamics. It covers advances in the naval architecture and ocean engineering, marine and ocean engineering, environmental engineering, water conservancy and hydropower engineering, energy exploration, chemical engineering, biological and biomedical engineering etc.
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