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Numerical Prediction Of Tip Vortex Cavitation Behavior And Noise Considering Nuclei Size And Distribution

机译:考虑核尺寸和分布的尖端涡流空化行为和噪声的数值预测

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The tip vortex cavitation behavior and sound generation were numerically analyzed. A numerical scheme combining Eulerian flow field computation and Lagrangian particle trace approach was applied to simulate tip vortex cavitation. Flow field was computed by using hybrid method which combines Reynolds-Averaged Navier-Stokes solver with Dissipation Vortex Model. The trajectory and behavior of each cavitation bubble were computed by Newton's second law and Rayleigh-Plesset equation, respectively. According to nuclei population data, the cavitation nuclei were distributed and convected into the tip vortex flow. Calculated volume of the cavitation bubble and the trajectory were used as the input of cavitation bubble noise analysis. The relationship of cavitation inception, sound pressure level, and cavitation nuclei size was studied at several cavitation numbers. It was found that cavitation inception of smaller nuclei is more sensitive to the change of cavitation number and cavitation noise due to the cav-itated smallest nuclei has the most influence on overall tip vortex cavitation noise.
机译:数值分析了尖端涡流空化行为和声音产生。将欧拉流场计算和拉格朗日粒子跟踪方法相结合的数值方案被用于模拟尖端涡流空化。流场是使用混合方法计算的,该方法将雷诺平均Navier-Stokes求解器与耗散涡模型相结合。通过牛顿第二定律和瑞利-普莱塞方程分别计算了每个空化气泡的轨迹和行为。根据核种群数据,空化核被分布并对流到尖端涡流中。空化气泡的计算体积和轨迹用作空化气泡噪声分析的输入。在几个空化数下研究了空化开始,声压级和空化核尺寸之间的关系。已经发现,较小的原子核的空化开始对空化数和空化噪声的变化更为敏感,这是因为空化的最小核对整体涡旋空化噪声的影响最大。

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