三维水翼周围空化脱落流动的改进滤波模型数值分析

IF 3.4 3区 工程技术 Q1 MECHANICS 水动力学研究与进展:英文版 Pub Date : 2017-04-01 DOI:10.1016/S1001-6058(16)60746-1
De-sheng Zhang (张德胜) , Wei-dong Shi (施卫东) , Guang-jian Zhang (张光建) , Jian Chen (陈健) , B.P.M. (Bart) van Esch
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引用次数: 13

摘要

采用改进的基于过滤器的模型(FBM)和考虑液汽最大密度比效应的传质空化模型,对三维Clark-Y型水翼的空化脱落流进行了数值模拟。基于改进的FBM模型和合适的最大密度比,准确捕捉了Clark-Y型水翼周围的非定常云腔脱落特征。数值结果表明,预测的空化模式和演化与实验结果吻合较好,时间平均升力系数、阻力系数和斯特劳哈尔数对空化数、雷诺数攻角的预测误差分别仅为3.29%、2.36%和9.58%。观察到空化脱落流型与判据法识别的涡结构密切相关。预测的云空化脱落流动明显表现出三个典型阶段:(1)附片空腔的起始,向尾缘生长;(2)再入射流的形成与发展。(3)下游大尺度云腔降水。数值结果还表明,非均匀逆压梯度是再入射流的主要驱动力,导致云腔脱落过程中出现u形空腔和三维气泡结构。
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Numerical analysis of cavitation shedding flow around a three-dimensional hydrofoil using an improved filter-based model

The cavitation shedding flow around a 3-D Clark-Y hydrofoil is simulated by using an improved filter-based model (FBM) and a mass transfer cavitation model with the consideration of the maximum density ratio effect between the liquid and the vapor. The unsteady cloud cavity shedding features around the Clark-Y hydrofoil are accurately captured based on an improved FBM model and a suitable maximum density ratio. Numerical results show that the predicted cavitation patterns and evolutions compare well with the experimental visualizations, and the prediction errors of the time-averaged lift coefficient, drag coefficient and Strouhal number for the cavitation number, the angle of attack at a Reynolds number are only 3.29%, 2.36% and 9.58%, respectively. It is observed that the cavitation shedding flow patterns are closely associated with the vortex structures identified by the criterion method. The predicted cloud cavitation shedding flow shows clearly three typical stages: (1) Initiation of the attached sheet cavity, the growth toward the trailing edge. (2) The formation and development of the re-entrant jet flow. (3) Large scale cloud cavity sheds downstream. Numerical results also indicate that the non-uniform adverse pressure gradient is the main driving force of the re-entrant jet, which results in the U-shaped cavity and the 3-D bubbly structure during the cloud cavity shedding.

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来源期刊
CiteScore
5.90
自引率
0.00%
发文量
1240
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