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NUMERICAL SIMULATION OF THE DUCTED PROPELLER AND APPLICATION TO A SEMI-SUBMERGED VEHICLE

机译:管道螺旋桨的数值模拟及应用于半埋网

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The self-propulsion test of underwater vehicles is the key technique for predicting and evaluating the navigation performance of these submersibles. In this study, the numerical simulation of a standard propeller ]D7704+Ka4-70 is first presented and the results are compared with experiments to validate the numerical approaches. The reason why the propulsion efficiency of the ducted propeller is higher than that of the conventional propeller is explored. Then, the paper proposes a series of numerical simulations conducted to test the performance of the ducted propeller designed according to the JD7704+Ka4-70 in order to match with the unmanned semi-submerged vehicle (USSV), and the propeller's open water characteristic curves are obtained. The results show a reasonable agreement with the regression analysis. Afterwards, the numerical simulations focus on a self-propulsion test of the USSV with the designed ducted propeller and the self-propulsion point is obtained. The streamlines through the hull as well as the ducted propellers are clearly obtained, together with the velocity distributions of the propeller plane. The results vividly demonstrate the hydrodynamic performance of the USSV with the designed propellers. In this paper, all the CFD simulations are based on the numerical software, Star-CCM+, and use the Reynolds-averaged Navier-Stokes (RANS) equations with the shear stress transport (SST) k-omega turbulence model.
机译:水下车辆的自推进试验是预测和评估这些潜水器的导航性能的关键技术。在本研究中,首先提出了标准螺旋桨的数值模拟,并将结果与​​实验进行了比较以验证数值方法。探讨了管道螺旋桨的推进效率高于传统螺旋桨的推进效率的原因。然后,本文提出了一系列的数值模拟,以测试根据JD7704 + KA4-70设计的管道螺旋桨的性能,以便与无人半埋网(USSV)相匹配,以及螺旋桨的开放水特性曲线获得。结果显示了与回归分析的合理协议。之后,数值模拟专注于USSV与设计的管道螺旋桨的自推进试验,并获得自动力点。通过船体以及管道螺旋桨的流线和管道平面的速度分布一起。结果生动地展示了USSV与设计螺旋桨的流体动力学性能。在本文中,所有CFD仿真都基于数值软件,星形CCM +,并使用雷诺平均Navier-Stokes(RANS)方程与剪切应力传输(SST)K-Omega湍流模型。

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