Affiliation:
1. 1 Naval University of Engineering , College of Power Engineering , Wuhan , China
Abstract
Abstract
Dynamic designs for ship propulsion shafting can be categorised as complex multi-disciplinary coupling systems. The traditional single disciplinary optimisation design method has become a bottleneck, restricting the further improvement of shafting design. In this paper, taking a complex propulsion shafting as the object, a dynamic analysis model of the propeller-shafting-hull system was established. In order to analyse the coupling effect of propeller hydrodynamics on shafting dynamics, the propeller’s hydrodynamic force in the wake flow field was calculated as the input for shafting alignment and vibration analysis. On this basis, the discipline decomposition and analysis of the subdisciplines in design of shafting dynamics were carried out. The coupling relationships between design variables in the subdisciplines were studied and the Multi-disciplinary Design Optimisation (MDO) framework of shafting dynamics was established. Finally, taking the hollowness of the shaft segments and the vertical displacement of bearings as design variables, combined with the optimal algorithm, the MDO of shafting dynamics, considering the coupling effect of the propeller-shafting-hull system, was realised. The results presented in this paper can provide a beneficial reference for improving the design quality of ship shafting.
Subject
Mechanical Engineering,Ocean Engineering
Reference21 articles.
1. J. Liu, F. Zeng, and J. Wu, Marine power plant. Huazhong University of Science and Technology Press, 2019.
2. H. Yin, J. Liu, L. Shi, F. Zeng, and S. Liu, ‘Study on alignment characteristics of ship flexible propulsion shafting’, Journal of Propulsion Technology, Vol. 43(04), pp. 401-409, 2021. doi: 10.13675/j.cnki.tjjs.200644.
3. C. Seo, B. Jeong, J-R. Kim, M. Song, J-H. Noh, and J. Lee, ‘Determining the influence of ship hull deformations caused by draught change on shaft alignment application using FE analysis’, Ocean Engineering, Vol. 210, 2020. 107488. doi: 10.1016/j.oceaneng.2020.107488.
4. X. Huang, Z. Su, and H. Hua, ‘Application of a dynamic vibration absorber with negative stiffness for control of a marine shafting system’, Ocean Engineering, Vol. 155, pp. 131-143, 2018. doi: 10.1016/j.oceaneng.2018.02.047.
5. Q. Huang, X. Yan, C. Zhang, and H. Zhu, ‘Coupled transverse and torsional vibrations of the marine propeller shaft with multiple impact factors’, Ocean Engineering, Vol. 178, pp. 48-58, 2019. doi: 10.1016/j.oceaneng.2019.02.071.
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