The Quasi-Static Response of Moored Floating Structures Based on Minimization of Mechanical Energy
It is essential to design a reasonable mooring line length that ensures quasi-static responses of moored floating structures are within an acceptable level, and that reduces the cost of mooring lines in the overall project. Quasi-static responses include the equilibrium position and the line tension...
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doaj-d3a1ab0e2647436a94e1e4d999d055112021-09-26T00:30:19ZengMDPI AGJournal of Marine Science and Engineering2077-13122021-09-01996096010.3390/jmse9090960The Quasi-Static Response of Moored Floating Structures Based on Minimization of Mechanical EnergyChun Bao Li0Mingsheng Chen1Joonmo Choung2Key Laboratory of High Performance Ship Technology (Wuhan University of Technology), Ministry of Education, Wuhan 430063, ChinaKey Laboratory of High Performance Ship Technology (Wuhan University of Technology), Ministry of Education, Wuhan 430063, ChinaDepartment of Naval Architecture and Ocean Engineering, Inha University, Incheon 22212, KoreaIt is essential to design a reasonable mooring line length that ensures quasi-static responses of moored floating structures are within an acceptable level, and that reduces the cost of mooring lines in the overall project. Quasi-static responses include the equilibrium position and the line tension of a moored floating structure (also called the mean value in a dynamic response), etc. The quasi-static responses derived by the classic catenary equation cannot present mooring–seabed interaction and hydrodynamic effects on a mooring line. While a commercial program can predict reasonable quasi-static responses, costly modeling is required. This motivated us to propose a new method for predicting quasi-static responses that minimizes the mechanical energy of the whole system based on basic geometric parameters, and that is easy to implement. In this study, the mechanical energy of moored floating structures is assumed to be the sum of gravitational–buoyancy potential energy, kinetic energy induced by drag forces, and spring potential energy derived by line tension. We introduce fundamental theoretical background for the development of the proposed method. We investigate the effect of quasi-static actions on mooring response, comparing the proposed method’s results with those from the catenary equation and ABAQUS software. The study reveals the shortcomings of the catenary equation in offshore applications. We also compare quasi-static responses derived by the AQWA numerical package with the results calculated from the proposed method for an 8 MW WindFloat 2 type of platform. Good agreement was drawn between the proposed method and AQWA. The proposed method proves more timesaving than AQWA in terms of modeling of mooring lines and floaters, and more accurate than the catenary equation, and can be used effectively in the early design phase of dimension mooring lengths for moored floating structures.https://www.mdpi.com/2077-1312/9/9/960quasi-static responsemooring linescatenary equationoptimizationmoored floating structures |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Chun Bao Li Mingsheng Chen Joonmo Choung |
spellingShingle |
Chun Bao Li Mingsheng Chen Joonmo Choung The Quasi-Static Response of Moored Floating Structures Based on Minimization of Mechanical Energy Journal of Marine Science and Engineering quasi-static response mooring lines catenary equation optimization moored floating structures |
author_facet |
Chun Bao Li Mingsheng Chen Joonmo Choung |
author_sort |
Chun Bao Li |
title |
The Quasi-Static Response of Moored Floating Structures Based on Minimization of Mechanical Energy |
title_short |
The Quasi-Static Response of Moored Floating Structures Based on Minimization of Mechanical Energy |
title_full |
The Quasi-Static Response of Moored Floating Structures Based on Minimization of Mechanical Energy |
title_fullStr |
The Quasi-Static Response of Moored Floating Structures Based on Minimization of Mechanical Energy |
title_full_unstemmed |
The Quasi-Static Response of Moored Floating Structures Based on Minimization of Mechanical Energy |
title_sort |
quasi-static response of moored floating structures based on minimization of mechanical energy |
publisher |
MDPI AG |
series |
Journal of Marine Science and Engineering |
issn |
2077-1312 |
publishDate |
2021-09-01 |
description |
It is essential to design a reasonable mooring line length that ensures quasi-static responses of moored floating structures are within an acceptable level, and that reduces the cost of mooring lines in the overall project. Quasi-static responses include the equilibrium position and the line tension of a moored floating structure (also called the mean value in a dynamic response), etc. The quasi-static responses derived by the classic catenary equation cannot present mooring–seabed interaction and hydrodynamic effects on a mooring line. While a commercial program can predict reasonable quasi-static responses, costly modeling is required. This motivated us to propose a new method for predicting quasi-static responses that minimizes the mechanical energy of the whole system based on basic geometric parameters, and that is easy to implement. In this study, the mechanical energy of moored floating structures is assumed to be the sum of gravitational–buoyancy potential energy, kinetic energy induced by drag forces, and spring potential energy derived by line tension. We introduce fundamental theoretical background for the development of the proposed method. We investigate the effect of quasi-static actions on mooring response, comparing the proposed method’s results with those from the catenary equation and ABAQUS software. The study reveals the shortcomings of the catenary equation in offshore applications. We also compare quasi-static responses derived by the AQWA numerical package with the results calculated from the proposed method for an 8 MW WindFloat 2 type of platform. Good agreement was drawn between the proposed method and AQWA. The proposed method proves more timesaving than AQWA in terms of modeling of mooring lines and floaters, and more accurate than the catenary equation, and can be used effectively in the early design phase of dimension mooring lengths for moored floating structures. |
topic |
quasi-static response mooring lines catenary equation optimization moored floating structures |
url |
https://www.mdpi.com/2077-1312/9/9/960 |
work_keys_str_mv |
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