Vibration Analysis of a Marine Propulsion Shaft System with the Torsional-longitudinal Coupling Effect Induced by Propeller and Crankshaft

Yang Yi, Zhang Lun, Yin Zhengyang, Wang Bozheng, Shen Guoji, Zhou Yang, Hu Niaoqing
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Abstract

Due to the complicated structure and harsh working environment, the marine propulsion shaft suffers from excessive vibrations in torsional, longitudinal and their coupled vibration modes. The coupled torsional-longitudinal effect is mainly induced by two factors, namely the propeller additional water and the crankshaft structure. However, most of previous models were established with only one coupling factor, and consequently there is still a lack of a complete understanding for coupled torsional-longitudinal vibration. Hence, a comprehensive investigation is performed in this work to reveal deeper mechanisms of coupled torsional-longitudinal vibrations for marine propulsion shaft system. A discrete torsional-longitudinal vibration model is established for a real-life marine shaft. The coupling effects due to propeller additional water and dynamic characteristics of crankshaft are considered simultaneously to model the realistic vibration conditions. Then, a theoretical analysis is conducted on a simplified model to present a theoretical basis. Natural frequencies and forced steady-state responses are calculated numerically to analyze the influences of coupled torsional-longitudinal effect on the eigenvalue problem and vibration characteristics. Results show that, both the propeller additional water and the crankshaft structure could induce coupled torsional-longitudinal vibrations, and should be considered simultaneously in the model to achieve accurate vibration prediction and analysis. Besides, the coupling effect could induce a high amplitude beyond expectation that may even threaten the structure safe. The theoretical and numerical results in this study could provide some suggestions to designers and researchers attempting to obtain desirable vibration behaviors for marine propulsion shafts.
船舶推进轴系在螺旋桨和曲轴扭转-纵向耦合作用下的振动分析
船舶推进轴由于结构复杂,工作环境恶劣,存在扭振、纵振及其耦合振动模式过大的问题。纵扭耦合效应主要由螺旋桨附加水和曲轴结构两个因素引起。然而,以往的模型大多只考虑一个耦合因素,因此对扭转-纵向耦合振动还缺乏完整的认识。因此,在这项工作中进行了全面的研究,以揭示船舶推进轴系统扭转-纵向耦合振动的更深层次机制。建立了实际船舶轴系扭纵离散振动模型。同时考虑了螺旋桨附加水的耦合效应和曲轴的动力特性,模拟了实际振动条件。然后,对简化后的模型进行理论分析,提供理论依据。数值计算了固有频率和强迫稳态响应,分析了扭转-纵向耦合效应对特征值问题和振动特性的影响。结果表明,螺旋桨附加水和曲轴结构都会引起扭纵耦合振动,在模型中应同时考虑这两个因素,以实现准确的振动预测和分析。此外,耦合效应会引起超出预期的高振幅,甚至可能威胁到结构的安全。本研究的理论和数值结果可以为船舶推进轴的设计和研究人员提供一些建议。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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