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Steady and Unsteady Hydrodynamic Loads on the Azimuth Bearing of a POD during a Crash-Stop Maneuver

机译:在碰撞 - 停止机动期间吊舱的方位角轴承稳定和不稳定的流体动力载荷

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摘要

The crash-stop maneuver of a ship equipped with two pods produces the largest loads that the structure and azimuth bearing can possibly experience. For design purposes, a sufficiently fast and accurate determination of the loads is thus critically important. This study examines load estimation during crash-stop maneuvers based on model tests and numerical methods. Forces and moments are compared to determine the influence of different control parameters (azimuth rate, propeller number of revolution, etc.). In addition, the results of numerical simulations carried out in model- and full-scale are used to analyze the influence of the Reynolds number on the flow behavior. Results show a significant influence of the azimuth rate on the maximum forces and moments. The numerical calculations indicate a strong dependency of the flow stall behavior on the azimuth rate. The dynamic stall effect on the profile-shaped parts, such as the pod strut, is shifted to a larger angle of attack compared with a steady angular position. This phenomenon is also observed during the model tests. The full-scale simulations show up to a 23% increase of the forces compared with the model-scale simulations. Thus, a detailed and careful handling of the results considered in the design process is required for the load estimation.
机译:配备两个吊舱的船舶的碰撞 - 停止机动产生了结构和方位角轴承可能经验的最大负载。为了设计目的,对负荷的充分快速和准确的测定是至关重要的。本研究在基于模型测试和数值方法的碰撞 - 停止操纵期间检查了负载估计。比较力和时刻以确定不同控制参数的影响(方位率,旋转速度等)。此外,在模型和全尺度中进行的数值模拟结果用于分析雷诺数对流动行为的影响。结果表明方位角对最大力和时刻的显着影响。数值计算表示流动失速行为对方位角速率的强大依赖性。与稳定的角度位置相比,沿轮廓形部件(例如POD支柱)的动态失速效应被移位到较大的迎角。在模型测试期间也观察到这种现象。与模型尺度模拟相比,全尺寸模拟显示出高达23%的力量增加。因此,负载估计需要在设计过程中考虑的结果的详细和仔细处理。

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