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On the enhancement of coupling potential flow models to RANS solvers for the prediction of propeller effective wakes

机译:关于RANS求解器耦合势流模型的增强,以预测螺旋桨有效尾流

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The calculation of the effective wake within the CFD context is usually made by combining a potential-flow method for modeling the propeller forces with a RANS equation solver for simulating the viscous flow around the hull and possible appendages. The different assumptions and/or simplifications made in the potential flow model relative to the viscous flow solver may result in significant errors in the prediction of the effective wake particularly for high loadings. This is especially troublesome for ships with full forms where large differences are expected between the nominal and effective wake, and for special propulsion applications such as contra-rotating units. Such errors are responsible within the hydrodynamic design problem for an unadjusted prediction of the propeller pitch, and within the hydrodynamic analysis problem for a deficient prediction of self-propulsion point. This paper presents an approach based on correction factors which converts propeller-induced velocities approximately estimated via potential flow theory into viscous induced velocities on the basis of a viscous flow RANS analysis. The correction factors are calculated for one reference advance number and work accurately in a neighboring region where the propeller loading may change about ±50 %. This procedure allows controlling one of the errors present in the calculation of effective wakes, namely the error derived from coupling a potential-flow method for the representation of the propeller with a RANS solver. Consequently, it permits calculating the effective wake more precisely. The approach is illustrated for a simple case in which the potential flow model representing the propeller is an actuator disk.
机译:在CFD上下文中,有效尾流的计算通常通过将用于建模螺旋桨力的势流方法与用于模拟船体和可能的附件周围的粘性流的RANS方程求解器相结合来进行。相对于粘性流动求解器,在潜在流动模型中做出的不同假设和/或简化可能会导致有效尾流的预测出现重大错误,尤其是对于高载荷。对于预期在名义和有效尾流之间存在较大差异的完整形式的船舶以及特殊的推进应用(例如反向旋转装置)而言,这尤其麻烦。这种误差在流体力学设计问题中负责螺旋桨螺距的未调整预测,而在流体动力学分析问题中负责自推进点的缺陷预测。本文提出了一种基于校正因子的方法,该方法在粘性流RANS分析的基础上,将通过势流理论近似估算的螺旋桨感应速度转换为粘性感应速度。为一个参考提前量计算校正因子,并在螺旋桨负载可能变化约±50%的邻近区域中准确地工作。该程序允许控制在有效尾流的计算中存在的误差之一,即,通过将用于螺旋桨表示的势能方法与RANS求解器耦合而得出的误差。因此,它允许更精确地计算有效唤醒。在简单情况下说明了该方法,在这种情况下,代表螺旋桨的潜在流量模型是执行器盘。

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