A higher order FEM for time-domain hydroelastic analysis of large floating bodies in an inhomogeneous shallow water environment

Author:

Papathanasiou T. K.1,Karperaki A.1,Theotokoglou E. E.1,Belibassakis K. A.2

Affiliation:

1. Department of Mechanics, School of Applied Mathematical and Physical Science, Zografou Campus 15773, Athens, Greece

2. School of Naval Architecture and Marine Engineering, National Technical University of Athens, Zografou Campus 15773, Athens, Greece

Abstract

The study of wave action on large, elastic floating bodies has received considerable attention, finding applications in both geophysics and marine engineering problems. In this context, a higher order finite-element method (FEM) for the numerical simulation of the transient response of thin, floating bodies in shallow water wave conditions is presented. The hydroelastic initial-boundary value problem, in an inhomogeneous environment, characterized by bathymetry and plate thickness variation, is analysed for two configurations: (i) a freely floating strip modelling an ice floe or a very large floating structure and (ii) a semi-fixed floating beam representing an ice shelf or shore fast ice, both under long-wave forcing. The variational formulation of these problems is derived, along with the energy conservation principle and the weak solution stability estimates. A special higher order FEM is developed and applied to the calculation of the numerical solution. Results are presented and compared against established methodologies, thus validating the present method and illustrating its numerical efficiency. Furthermore, theoretical results concerning the energy conservation principle are verified, providing a valuable insight into the physical phenomenon investigated.

Publisher

The Royal Society

Subject

General Physics and Astronomy,General Engineering,General Mathematics

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2. Time-Dependent Modelling of the Wave-Induced Vibration of Ice Shelves;Journal of Marine Science and Engineering;2023-06-08

3. Modeling Ocean Wave Transfer to Ross Ice Shelf Flexure;Geophysical Research Letters;2022-11-09

4. Swell-induced flexural vibrations of a thickening ice shelf over a shoaling seabed;Proceedings of the Royal Society A: Mathematical, Physical and Engineering Sciences;2021-10

5. Overview: Research on hydroelastic responses of VLFS in complex environments;Marine Structures;2021-07

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