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A numerical study of hull/propeller/rudder interaction

机译:船体/螺旋桨/方向舵互动的数值研究

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A numerical study of the interaction between the hull, propeller and rudder is presented in this paper. The flow around a ship hull at full scale is first calculated using a RANS solver with a series of systematically generated grids. This grid dependence study is made for the total resistance of the hull and a grid density is chosen. The total resistance of the same ship at four Froude numbers at model scale are computed and compared with experiments. Then self-propulsion tests of the hull and propeller with and without rudder are simulated and compared with measured data. Good agreement is found. By moving the rudder backwards, the effect of the distance between propeller and rudder behind the hull is captured and shows the same tendency as the experiment. Flow fields, such as axial velocity contours at the propeller plane, slipstream deformation, due to the rudder, and limiting streamlines on the surface of rudder and hull are illustrated. Comparisons between two configurations with rudder at different positions are made. It is demonstrated that the present method is promising for evaluating self-propulsion characteristics of hull/propeller/rudder configurations.
机译:本文介绍了船体,螺旋桨和舵之间相互作用的数值研究。首先使用带有一系列系统产生的网格的RAN求解器来计算船船周围的流量。该网格依赖性研究是为了选择船体的总电阻,并选择栅格密度。计算并与实验相比,计算了在模型比例下四个Froude号码的同一船的总电阻。然后模拟船体和螺旋桨的自推进试验,并与测量数据进行比较。找到了良好的协议。通过向后移动方向舵,捕获螺旋桨与船舵之间的距离的效果并显示与实验相同的趋势。示出了流场,例如螺旋桨平面的轴向速度轮廓,由于舵,引起的滑流变形,并限制在舵和船体表面上的流线。制作两个在不同位置的舵之间的两种配置的比较。结果证明,本方法是对评估船体/螺旋桨/舵配置的自推进特性的承诺。

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