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A Contribution to Study on the Lift of Ventilated Supercavitating Vehicle With Low Froude Number

机译:低弗洛德数通风超空化车辆升力研究的贡献

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A ventilated cavity was investigated using three-dimensional numerical simulation and cavitation water tunnel experiments under the condition of low Froude number. A two-fluid multiphase flow model was adopted in numerical predictions. The drag between the different phases and gravitational effect, as well as the compressibility of gas, was considered in the numerical simulations. By comparing the ventilated coefficient computational results of three different turbulence models with the Epshtein formula, the shear-stress-transport turbulence model was finally employed. The phenomenon of double-vortex tube gas-leakage was observed in both numerical simulations and experiments. Based on the validity of the numerical method, the change law of the lift coefficient on the afterbody was given by numerical predictions and accorded well with experimental results. The cause for the appearance of an abrupt increase in lift was difficult to get from experiments for the hard measurement, whereas the numerical simulations provided some supplements to analyze the reasons. The distribution of lift coefficient on the afterbody had important significance to the design of underwater vehicles.
机译:在低弗洛德数下,采用三维数值模拟和空化水隧道实验研究了通风腔。数值预测采用了两流体多相流模型。在数值模拟中考虑了不同相之间的阻力和重力作用以及气体的可压缩性。通过将三种不同湍流模型的通风系数计算结果与Epshtein公式进行比较,最终采用了剪应力-传输湍流模型。在数值模拟和实验中均观察到了双涡管漏气现象。基于数值方法的有效性,通过数值预测给出了后升力系数的变化规律,与实验结果吻合较好。难以测量的实验很难找到引起升力突然增加的原因,而数值模拟为分析原因提供了一些补充。车身后升力系数的分布对水下航行器的设计具有重要意义。

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