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Influence of drift angle on the computation of hull–propeller-rudder interaction

机译:漂移角对船体 - 螺旋桨 - 舵相互作用计算的影响

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摘要

The operation of the propeller dominates the flow interaction effects on the upstream hull and a downstream rudder. An investigation is carried out into the sensitivity with which these effects can be resolved when an angle of drift is applied as well as the length of an upstream body is varied. The computed results are compared to a detailed wind tunnel investigation which measured changes in propeller thrust, torque and rudder forces. Variation of the upstream body length and drift angle effectively varies the magnitude of the crossflow and wake at the propeller plane. The time resolved flow was computed around the hull-propeller–rudder configuration using the Reynolds averaged Navier Stokes (RANS) equations and an Arbitrary Mesh Interface (AMI) model to account for the motion of the propeller. A mesh sensitivity study quantifies the necessary number of mesh cells to adequately resolve the flow field. Overall, good agreement is found between the experimental and computational results when predicting the change in propulsive efficiency, flow straightening and rudder manoeuvring performance. However, it can be seen that there is a significant computational expense associated with a time resolved propeller interaction and that alternative body force based methods are likely to still be required with the computation of self-propelled ship manoeuvres.
机译:螺旋桨的运行控制着上游船体和下游舵上的流体相互作用。对施加漂移角以及改变上游主体的长度时可以解决这些影响的灵敏度进行了研究。将计算结果与详细的风洞研究进行比较,该研究测量了螺旋桨推力,扭矩和方向舵力的变化。上游主体长度和漂移角的变化有效地改变了横流和螺旋桨平面处的尾流的大小。使用雷诺平均Navier Stokes(RANS)方程和任意网格界面(AMI)模型计算围绕螺旋桨运动的时间分辨流,以解决螺旋桨的运动问题。网格敏感性研究量化了必要数量的网格,以充分解决流场问题。总体而言,在预测推进效率,流平直度和方向舵操纵性能的变化时,在实验结果和计算结果之间找到了很好的一致性。但是,可以看出,与时间分辨的螺旋桨相互作用相关的计算量很大,而且自推进舰艇机动的计算仍可能需要基于替代体力的方法。

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