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Implementation of Linear Potential-Flow Theory in the 6DOF Coupled Simulation of Ship Collision and Grounding Accidents
- Source :
- Journal of ship research, 60 (2016): 119–144. doi:10.5957/JOSR.60.3.160012, info:cnr-pdr/source/autori:Yu, Zhaolong 1) 2); Shen, Yugao 1) 2); Amdahl, Jorgen 1) 2); Greco, Marilena 1) 2) 3)/titolo:Implementation of Linear Potential-Flow Theory in the 6DOF Coupled Simulation of Ship Collision and Grounding Accidents/doi:10.5957%2FJOSR.60.3.160012/rivista:Journal of ship research (Print)/anno:2016/pagina_da:119/pagina_a:144/intervallo_pagine:119–144/volume:60
- Publication Year :
- 2016
- Publisher :
- Society of Naval Architects and Marine Engineers., New York, Stati Uniti d'America, 2016.
-
Abstract
- Ship collisions and groundings are highly nonlinear and transient, coupled dynamic processes involving large structural deformations and fluid structure interactions. It has long been difficult to include all effects in one simulation. By taking advantage of the user-defined load subroutine and the user common variable, this article implements a model of hydrodynamic loads based on linear potential-flow theory into the nonlinear finite element code LS-DYNA, facilitating a fully coupled six degrees of freedom (6DOF) dynamic simulation of ship collision and grounding accidents. Potential-flow theory both with and without considering the forward speed effect is implemented for studying the speed influence. With the proposed model, transient effects of the fluid, global ship motions, impact forces, and structural damage can all be predicted with high accuracy. To the authors' knowledge, this is the first time the fully coupled 6DOF collision and grounding simulations are carried out with linear hydrodynamic loads for transient conditions but without simplification of collision forces. The proposed method is applied to calculations of an offshore supply vessel colliding with a rigid plate and with a submersible platform. The results are compared with a decoupled method and discussed with emphasis on the influence of different initial velocities. The proposed method is capable of predicting both the 6DOF ship motions and structural damage simultaneously with good efficiency and accuracy; hence, it will be a very promising tool in the application to ship collision and grounding analysis.
- Subjects :
- Engineering
6DOF
020101 civil engineering
Ocean Engineering
02 engineering and technology
Forward speed
01 natural sciences
010305 fluids & plasmas
0201 civil engineering
Control theory
0103 physical sciences
transient solution
Simulation
Civil and Structural Engineering
ComputingMethodologies_COMPUTERGRAPHICS
Numerical Analysis
collision and grounding
Ground
business.industry
Applied Mathematics
Mechanical Engineering
Degrees of freedom
Collision
Flow (mathematics)
linear potential-flow theory
coupled simulation
Linear potential
business
forward speed
Subjects
Details
- Language :
- English
- Database :
- OpenAIRE
- Journal :
- Journal of ship research, 60 (2016): 119–144. doi:10.5957/JOSR.60.3.160012, info:cnr-pdr/source/autori:Yu, Zhaolong 1) 2); Shen, Yugao 1) 2); Amdahl, Jorgen 1) 2); Greco, Marilena 1) 2) 3)/titolo:Implementation of Linear Potential-Flow Theory in the 6DOF Coupled Simulation of Ship Collision and Grounding Accidents/doi:10.5957%2FJOSR.60.3.160012/rivista:Journal of ship research (Print)/anno:2016/pagina_da:119/pagina_a:144/intervallo_pagine:119–144/volume:60
- Accession number :
- edsair.doi.dedup.....49aefd70645970862a937cd9a92706d7