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Ship underwater noise assessment by the acoustic analogy, part Ⅲ: measurements versus numerical predictions on a full-scale ship

机译:通过声学类比评估船舶水下噪声,第三部分:全尺寸船舶的测量与数值预测

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摘要

The acoustic analogy represents a powerful and versatile approach, able to numerically predict the noise generated by a body moving in a fluid. It is widely used to provide essential indications about the aeroacoustic behavior of aircraft and helicopters (even at a design stage) and, eventually, to pursue effective strategies aimed at desirable reduction and/or control of noise. Nevertheless, applications in the area of hydroacoustics and in the prediction of ship underwater noise are very rare. In this paper, the potential of the acoustic analogy is directly tested on a large ferry, for which a measurement campaign at sea was performed. In spite of the complexity of the tested configuration [the ship mounts two contracted and loaded tip (CLT) propellers located ahead of two rudders, and its hull is characterized by a rather elongated skeg] and the many variables not taken into account in the numerical simulation (such as the contribution from machinery noise and the probable occurrence of tip vortex cavitation), the agreement between the measured and computed noise spectra is quite satisfactory. The analysis suggests many interesting features of the ship hydroacoustic field: the dominant role played by nonlinear sources far from the body and the relevance of scattering effects from the hull surface. Furthermore, the scattered pressure seems to contribute to alter the frequency content of the resulting signatures with respect to the blade passage frequencies. Finally, an overview of future developments and applications of this numerical approach for marine/maritime problems is presented.
机译:声学类比代表了一种强大而通用的方法,能够在数值上预测由在流体中移动的物体所产生的噪声。它被广泛用于提供有关飞机和直升机的空气声学行为的必要指示(甚至在设计阶段),并最终用于追求有效降低噪声和/或控制噪声的策略。然而,在水声学领域和船舶水下噪声预测中的应用却很少。在本文中,可以在大型渡轮上直接测试声学类比的潜力,为此,在海上进行了测量活动。尽管测试的配置很复杂[该船在两个方向舵之前安装了两个收缩和加载式尖端(CLT)螺旋桨,并且船体的特征是较长的骨],但在数值计算中没有考虑许多变量通过模拟(例如来自机械噪声的贡献和可能发生的尖端涡旋空化),实测和计算的噪声谱之间的一致性非常令人满意。该分析表明了船舶水声场的许多有趣特征:远离身体的非线性源所起的主导作用,以及来自船体表面的散射效应的相关性。此外,散射压力似乎有助于相对于叶片通过频率改变所得特征的频率含量。最后,概述了这种数值方法在海洋/海事问题上的未来发展和应用。

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