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Computational Analysis of Marine-Propeller Performance Using Transition-Sensitive Turbulence Modeling

机译:基于过渡敏感湍流模型的船舶螺旋桨性能计算分析

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Almost all computational fluid dynamics (CFD) simulations of flow around marine propellers use turbulence models that are only well suited for fully turbulent flows, which in some cases may lead to accuracy degradation in the prediction of propeller performance characteristics. The discrepancy between computed thrust and torque and corresponding experimental data increases with increasing propeller load. This is due in part to the fact that a large laminar flow region is found to exist and turbulence transition takes place on propeller blades of model scale and/or under high-load conditions. In these cases, it may be necessary to consider boundary-layer transition to obtain accurate results from CFD simulations. The objective of this work is to perform simulations of a marine propeller using a transition-sensitive turbulence model to better resolve the propeller flow characteristics. Fully turbulent flow simulations are also performed for comparison purposes at various propeller load conditions. Computational results are analyzed and compared with water-tunnel and open-water experimental data. It is found that the applied transition-sensitive turbulence model is better able to resolve blade-surface stresses, flow separations, and tip-vortex originations, and, consequently, improve the prediction accuracy in propeller performance, especially under high-load conditions. Furthermore, solutions obtained using the transition-sensitive turbulence model show tip-vortex flows of higher strength, whereas results by the standard k-omega SST turbulence model indicate excessive dissipation of the vortex core.
机译:船用螺旋桨周围流的几乎所有计算流体动力学(CFD)模拟都使用仅非常适合于完全湍流的湍流模型,在某些情况下,这可能会导致螺旋桨性能特征的预测精度下降。计算的推力和扭矩与相应的实验数据之间的差异会随着螺旋桨负载的增加而增加。这部分地是由于发现存在较大的层流区域,并且在模型尺寸的螺旋桨叶片上和/或在高负荷条件下发生了湍流过渡。在这些情况下,可能有必要考虑边界层过渡,以从CFD模拟中获得准确的结果。这项工作的目的是使用过渡敏感湍流模型对船用螺旋桨进行仿真,以更好地解析螺旋桨的流动特性。为了在各种螺旋桨负载条件下进行比较,还进行了全湍流模拟。分析计算结果,并将其与水隧道和开水实验数据进行比较。已经发现,所应用的过渡敏感湍流模型能够更好地解决叶片表面应力,流分离和叶尖旋涡起源,从而提高螺旋桨性能的预测精度,尤其是在高负载条件下。此外,使用过渡敏感湍流模型获得的解显示出更高强度的尖端涡流,而标准k-omega SST湍流模型的结果表明涡流核的过度耗散。

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