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Acoustic and vibrational characteristics of a propeller-shaft-hull coupled system based on sono-elasticity theory

机译:基于超声弹性理论的螺旋桨轴耦合系统的声学和振动特性

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摘要

The three-dimensional sono-elasticity method recently developed by Zou ((2014) Three-dimensional sono-elasticity of ships. PhD Dissertation, China Ship Scientific Research Center, China) and Wu ((1984) Hydroelasticity of floating bodies. PhD Dissertation, Brunel University, UK) is employed to explore the acoustic and vibrational characteristics of a propeller-shaft-hull coupled system. The acoustic field can be solved by introducing Green's function for the ideal compressible fluid together with the Price-Wu generalized fluid-structure interface boundary conditions. The vibration of a ship structure is governed by the generalized equations, including added mass, damping and restoring coefficients. In order to discover the mechanisms underlying the acoustic and vibrational characteristics of the propeller-shaft-hull coupled system, numerical models for hull structures with a shaft and without a shaft are designated. Through modal analysis, the correlations of the line spectra of acoustic radiation and the corresponding vibration modes of the hull are clearly identified. Through further numerical analysis, the appropriate location of the base for the thrust bearing and installation schemes are recommended.
机译:最近由Zou((2014)三维声波弹性开发的三维声音弹性方法。博士论文,中国船舶科学研究中心,中国)和吴((1984)浮体的水力弹素。博士论文,英国布鲁内尔大学)受雇于探索螺旋桨轴船体耦合系统的声学和振动特性。可以通过将绿色的功能与价格-WU广义流体结构界面边界条件引入绿色的可压缩流体的绿色功能来解决声学场。船舶结构的振动由广义方程管辖,包括增加质量,阻尼和恢复系数。为了发现螺旋桨 - 轴壳耦合系统的声学和振动特性的机制,指定具有轴和没有轴的船体结构的数值模型。通过模态分析,清楚地识别出声辐射的线谱和船体的相应振动模式的相关性。通过进一步的数值分析,建议使用止推轴承和安装方案的底座的适当位置。

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