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首页> 外文期刊>Journal of Marine Science and Engineering >Hydro-Acoustic and Hydrodynamic Optimization of a Marine Propeller Using Genetic Algorithm, Boundary Element Method, and FW-H Equations
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Hydro-Acoustic and Hydrodynamic Optimization of a Marine Propeller Using Genetic Algorithm, Boundary Element Method, and FW-H Equations

机译:利用遗传算法,边界元方法和FW-H方程对船舶螺旋桨进行水声和水动力优化

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Noise generated by ships is one of the most significant noises in seas, and the propeller has a significant impact on the noise of ships, which reducing it can significantly lower the noise of vessels. In this study, a genetic algorithm was used to optimize the hydro-acoustic and hydrodynamic performance of propellers. The main objectives of this optimization were to reduce the propeller noise and increase its hydrodynamic efficiency. Modifying the propeller geometry is one of the most effective methods for optimizing a propeller performance. One of the numerical methods for calculating propeller noise is the Ffowcs Williams and Hawkings (FW-H) Model. A numerical code was developed by authors which solved these equations using the velocity and pressure distribution around the propeller and calculated its noise. To obtain flow quantities and to investigate the hydrodynamic performance of the propeller, a code was developed using a Boundary Element Method, the panel method. The geometry of DTMB 4119 propeller was selected for optimization, where geometric modifications included skew angle, rake angle, pitch to diameter (P/D) distribution, and chord to diameter (c/D) distribution. Finally, the results of geometric optimization were presented as Pareto optimal solutions. The results indicated that the optimum geometries had rake angles between 8.14 and 12.05 degrees and skew angles between 31.52 and 39.74 degrees. It was also observed that the increase in the chord up to a specific limit enhanced the efficiency and reduced the noise of the propeller.
机译:船舶产生的噪音是海洋中最重大的噪音之一,螺旋桨对船舶的噪音产生重大影响,降低该噪音可以大大降低船舶的噪音。在这项研究中,使用遗传算法来优化螺旋桨的水声和水动力性能。该优化的主要目标是减少螺旋桨噪音并提高其流体动力效率。修改螺旋桨的几何形状是优化螺旋桨性能的最有效方法之一。 Ffowcs Williams and Hawkings(FW-H)模型是计算螺旋桨噪声的一种数值方法。作者开发了一个数字代码,该代码使用螺旋桨周围的速度和压力分布求解了这些方程,并计算了其噪声。为了获得流量并研究螺旋桨的流体力学性能,使用边界元方法(面板方法)开发了一个代码。选择DTMB 4119螺旋桨的几何形状进行优化,其中的几何修改包括偏斜角,前角,螺距到直径(P / D)分布和弦至直径(c / D)分布。最后,将几何优化的结果表示为帕累托最优解。结果表明,最佳几何形状的前角在8.14至12.05度之间,倾斜角在31.52至39.74度之间。还观察到,将弦增加到特定极限可以提高效率并降低螺旋桨的噪音。

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