|Table of Contents|

Citation:
 Zizhao Zhang,Fafu Zhang,Zhuang Kang,et al.Influence of Elastic Modulus on the Dynamic Response of Polyester Mooring Under a Large Axial Stretch[J].Journal of Marine Science and Application,2024,(1):201-208.[doi:10.1007/s11804-024-00400-x]
Click and Copy

Influence of Elastic Modulus on the Dynamic Response of Polyester Mooring Under a Large Axial Stretch

Info

Title:
Influence of Elastic Modulus on the Dynamic Response of Polyester Mooring Under a Large Axial Stretch
Author(s):
Zizhao Zhang1 Fafu Zhang2 Zhuang Kang1 Liping Sun1 Shangmao Ai1
Affilations:
Author(s):
Zizhao Zhang1 Fafu Zhang2 Zhuang Kang1 Liping Sun1 Shangmao Ai1
1 College of Shipbuilding Engineering, Harbin Engineering University, Harbin 150001, China
2 Offshore Oil Engineering Co. LTD., Tianjin 300457, China
Keywords:
Large axial stretch|Slender rod theory|Polyester mooring|Elastic modulus|Dynamic response
分类号:
-
DOI:
10.1007/s11804-024-00400-x
Abstract:
Owing to the particularity of a polyester fiber material, the polyester mooring undergoes large axial tensile deformation over long-term use. Large axial tensile deformation significantly impacts the dynamic response of the mooring system. In addition, the degrees of large axial tension caused by different elastic moduli are also different, and the force on the mooring line is also different. Therefore, it is of great significance to study the influence of elastic modulus on the dynamic results of the mooring systems under large axial tension. Conventional numerical software fails to consider the axial tension deformation of the mooring. Based on the theory of slender rods, this paper derives the formula for large axial tension using the method of overall coordinates and overall slope coordinates and provides the calculation programs. Considering a polyester mooring system as an example, the calculation program and numerical software are used to calculate and compare the static and dynamic analyses to verify the reliability of the calculation program. To make the force change of the mooring obvious, the elastic moduli of three different orders of magnitude are compared and analyzed, and the dynamic response results after large axial tension are compared. This study concludes that the change in the elastic modulus of the polyester mooring changes the result of the vertex tension by generating an axial tension. The smaller the elastic modulus, the larger the forced oscillation motion amplitude of the top point of the mooring line, the more obvious the axial tension phenomenon, and the smaller the force on the top of the polyester mooring.

References:

Aamo OM, Fossen TI (2000) Finite element modeling of mooring lines.Mathematics and Computers in Simulation 5(53): 415-422.DOI: 10.1016/S0378-4754(00)00235-4
Beltran JF, Ramirez N, Williamson E (2017) Simplified analysis of the influence of strain localization and asymmetric damage distribution on static damaged polyester rope behavior.Ocean Engineering 145: 14-17.DOI: 10.1016/J.OCEANENG.2017.09.006
Berzeri M, Shabana AA (2000) Development of simple models for the elastic forces in the absolute nodal co-ordinate formulation.Journal of Sound and Vibration 235(4): 539-565
Cai Fengchun, Zang Fenggang, Ye Xianhui, Huang Qian (2011) Analysis of nonlinear dynamic behavior of pipe conveying fluid based on absolute nodal coordinate formulation.Journal of Vibration and Shock 30(6): 143-146, 157.DOI: 10.13465/j.cnki.jvs.2011.06.032
Chen Xiaohong, Zhang Jun, Ma Wei (2001) On dynamic coupling effects between a spar and its mooring lines.Ocean Engineering 28(7): 863-887.DOI: 10.1016/S0029-8018(00)00026-3
Clukey E, Jacob P, Sharma PP (2008) Investigation of riser seafloor interaction using explicit finite element methods.Offshore Technology Conference, Houston, OTC-19432-MS.DOI: 10.4043/19432-MS
Ding Haijian, Qian Jiayu, Tao Jun (2015) Influence of nonlinear stiffness on deep mooring system.Ship Engineering 37(4): 84-97.DOI: 10.13788/j.cnki.cbgc.2015.04.084
Feng Limei (2016) Usage of polyester rope in deepwater mooring system.Ocean Engineering Equipment and Technology 3(5): 315-319
Gu Chujiang (2009) Study on lectotype of tidal current power platform and mooring system design.PhD thesis, Harbin Engineering University, Harbin
Kim N, Jeon SS, Kim MY (2004) Nonlinear finite element analysis of ocean cables.China Ocean Engineering 18(4): 537-550
Li Da, Bai Xueping, Wang Wenxiang (2018) Research on key technologies for design of deep water FPSO single point mooring system in South China Sea.China Offshore Oil and Gas 30(4): 196-202.DOI: 10.11935/j.issn.1673-1506.2018.04.025
Li Hangyu, Li Maoben, Li Yanxi (2021) Review of fiber mooring polyester ropes for deep sea floating structures.International Core Journal of Engineering 7(5): 122-127.DOI: 10.6919/ICJE.202105_7(5).0045
Liu Wenxi, Zhang Weikang, Ren Huilong (2012) Calculation of nonlinear dynamic response of mooring lines.Shipbuilding of China 53(2): 39-50
Ma Gang (2013) Nonlinear dynamic response analysis of slender rods in deepwater.PhD thesis, Harbin Engineering University, Harbin
Ma Gang, Sun Liping, Ai Shangmao (2015) A nonlinear mechanical model for extensible slender rod.Applied Mathematics and Mechanics 36(4): 371-377.DOI: 10.3879/j.issn.1000-0887.2015.04.004
Mao Chengliang (2019) Nonlinear stiffness simulation analysis of polyester ropein deep ocean semi-ubmersible platform.Ship Engineering 48(1): 112-116.DOI: 10.3963/j.issn.1671-7953.2019.01.026
Pankina SI, Umanskaya LA, Lyutikova M, Malakhov SO, Syusyuka E (2021) Analysis of the accident consequences at the remote mooring facilities of the Caspian Pipeline Consortium.IOP Conference Series: Earth and Environmental Science 872(1): 012025.DOI: 10.1088/1755-1315/872/1/012025
Segal EM, Rhode-Barbarigos L, Adriaenssens S, Coelho RDF (2015) Multi-objective optimization of polyester-rope and steel-rope suspended footbridges.Engineering Structures 56(6): 99-105.DOI: 10.1016/j.engstruct.2015.05.024
Shabana AA, Yakoub RY (2001) Three-dimensional absolute nodal coordinate formulation for beam elements: theory.Journal of Mechanical Design 123(4): 606-613
Tahar A, Kim MH (2008) Coupled-dynamic analysis of floating structures with polyester mooring lines.Ocean Engineering 35(17): 1676-1685.DOI: 10.1016/j.oceaneng.2008.09.004
Wang Zhifeng, Du Chunshui, Gao Chao (2021) Deepwater polyester cable mooring technology and application.Nem Technology & Products of China 30(5): 39-42.DOI: 10.13612/j.cnki.cntp.2021.05.012
Welch SM, Tulin MP (1993) Axial cable stretching due to strumming and possibility for resonance.Proceedings of the Third International Offshore and Polar Engineering Conference, 364-369
Zhang Ding, Xu Yangguang (2021) Fluence of different combinations of mooring line on characteristics of FLNG single point mooring system.China Offshore Oil and Gas 33(5): 175-181.DOI: 10.11935/j.issn.1673-1506.2021.05.022
Zhang Ruoyu, Tang Yougang, Song Jizhe, Liu Liqin (2012) Analysis of dynamic tension nonlinear characteristics for mooring system in the deep water.Journal of Ship Mechanics 16(7): 804-811
Zhang Yang, Chai Zhuang, Wang Wenhua (2021) Dynamic stiffness characteristic of deep-sea mooring cable.Ship Engineering 43(2): 149-155.DOI: 10.13788/j.cnki.cbgc.2021.02.03

Memo

Memo:
Received date:2023-03-02;Accepted date:2023-05-06。
Foundation item:Supported by the Specialized Research Project for LS17-2 Semi-submersible Production Platform (LSZX-2020-HN-05-0405), and the Engineering Development Program of Deepwater Semisubmersible Production Storage and Unloading Platform of China (SSBQ-2020-HN-02-04).
Corresponding author:Zhuang Kang, E-mail: kangzhuang@hrbeu.edu.cn
Last Update: 2024-03-19