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Numerical investigation on the effect of shaft inclination angle on hydrodynamic characteristics of a surface-piercing propeller

机译:轴倾斜角度对表面刺穿螺旋桨流体动力学特性的数值研究

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The global demand for fast sea transportation has led to an ongoing development of high-speed vessels and surface-piercing propeller, as a high performance propulsor, has played an important role in this development. However, the complexity of the two-phase flow field around the propeller has made its numerical analysis enough challenging. The performance of surface-piercing propeller depends on propeller geometric parameters and flow conditions at propeller disk. Among these parameters, shaft inclination angle is a key parameter which significantly affects the flow conditions at propeller disk. In this paper, RANS computations were applied to investigate the unsteady flow around an optimized surface-pricing propeller in various shaft inclination angles. Likewise, the homogeneous Eulerian multiphase model was employed along with Volume of Fluid model to solve the two-phase flow field equations. Rotational motion of the propeller was simulated by CFX sliding mesh technique. The effect of shaft inclination angle on the hydrodynamic coefficients of the propeller and the behavior of the fluid flow around the propeller key blade are among the principal objectives clarified in this study. As the results indicated, the propeller thrust and torque coefficients were gone up with an increase in the shaft inclination angle. Moreover, as the shaft inclination angle increases, the maximum thrust and torque coefficients of the key blade take place at the lower rotation angles. Additionally, it was revealed that the effect of shaft inclination angle on the torque coefficient of the key blade depends on the angular position of the key blade. Furthermore, the flow patterns around the propeller were predicted in different shaft inclination angles. In order to verify the accuracy of the numerical method used in this paper, numerical simulations were run on SPP-841B propeller with available experimental data. The comparison between the simulated and measured SPP-841B open characteristics as well as the ventilation pattern of the key blade indicates a reasonable agreement with the experimental data.
机译:全球对快速海运的需求导致高速船舶和表面刺穿螺旋桨的持续发展,作为一种高性能推进器,在这一发展中发挥了重要作用。然而,螺旋桨周围的两相流场的复杂性使其数值分析足够具有挑战性。表面刺穿螺旋桨的性能取决于螺旋桨盘的螺旋桨几何参数和流量条件。在这些参数中,轴倾斜角是显着影响螺旋桨盘的流动条件的关键参数。在本文中,应用RAN计算来研究各种轴倾斜角度优化的表面定价螺旋桨周围的不稳定流动。同样地,使用均匀的欧拉多相模型与流体模型的体积一起使用以解决两相流场方程。通过CFX滑动网格技术模拟螺旋桨的旋转运动。轴倾斜角对螺旋桨流体动力系数的影响及螺旋桨键叶片周围的流体流动的行为是本研究澄清的主要目的之一。随着所示结果,螺旋桨推力和扭矩系数随着轴倾斜角的增加而上升。此外,随着轴倾斜角度增加,键刀片的最大推力和扭矩系数在较低的旋转角处发生。另外,揭示了轴倾斜角对键叶片的扭矩系数的影响取决于键叶片的角位置。此外,在不同的轴倾斜角度预测螺旋桨周围的流动图案。为了验证本文中使用的数值方法的准确性,在具有可用实验数据的SPP-841B推进器上运行数值模拟。模拟和测量的SPP-841B打开特性的比较以及关键刀片的通风图案表示与实验数据合理的协议。

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