Affiliation:
1. Department of Maritime and Transport Technology, Delft University of Technology, Netherlands
Abstract
Loads due to wave impacts are a limiting factor in the design of liquefied natural gas (LNG) tankers and their insulation. The current methodology considers the load independent from the response of the tank. Better tanks can be designed by knowing the effect of the interaction between the wave loads and the response, however predicting these effects is computationally expensive. In this paper a new application of the non-hydrostatic shallow water equations are presented, namely as a reduced order model (ROM) for fluid structure interaction for wave impacts. Our ROM is compared to a high fidelity model. The proposed ROM is fast and accurately predicts the total impulse and added mass, and therefore the general behaviour of the structure during the free vibration phase. It does however not always accurately predict the maximum force. It is therefore considered an appropriate tool for a first screening of the loads for which fluid-structure interaction is important, after which a more accurate method can be used to evaluate the most interesting cases. A sensitivity study is performed for various impact angles and velocities, showing that the importance of fluid structure interaction depends highly on the specific situation.
Subject
Mechanical Engineering,Ocean Engineering
Reference21 articles.
1. Interim report on wave-pressure research;Bagnold;Journal of the Institution of Civil Engineers,1939
2. H. Bogaert, M.L. Kaminski and L. Brosset, Full and large scale wave impact tests for a better understanding of sloshing – results of the sloshel project, in: Proceedings of the International Conference on Ocean, Offshore and Arctic Engineering, 2011.
3. A reduced order model for structural response of the Mark III LNG cargo containment system;Bos;International Shipbuilding Progress,2020
4. R.W. Bos and M.L. Kaminski, Comparing 2D and 3D linear response of a simplified LNG membrane cargo containment system, in: Proceedings of the International Offshore and Polar Engineering Conference, 2018, pp. 780–787.
5. The impact of a water wedge on a wall;Cumberbatch;Fluid Mech.,1959
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