Interaction of wave with a body submerged below an ice sheet with multiple arbitrarily spaced cracks

The problem of wave interaction with a body submerged below an ice sheet with multiple arbitrarily spaced cracks is considered, based on the linearized velocity potential theory together with the boundary element method. The ice sheet is modeled as a thin elastic plate with uniform properties, and z...

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Bibliographic Details
Published in:Physics of Fluids
Main Authors: Li, Z. F., Wu, G. X., Ji, C. Y.
Other Authors: National Natural Science Foundation of China, Lloyd's Register Foundation
Format: Article in Journal/Newspaper
Language:English
Published: AIP Publishing 2018
Subjects:
Online Access:http://dx.doi.org/10.1063/1.5030378
https://pubs.aip.org/aip/pof/article-pdf/doi/10.1063/1.5030378/15840378/057107_1_online.pdf
Description
Summary:The problem of wave interaction with a body submerged below an ice sheet with multiple arbitrarily spaced cracks is considered, based on the linearized velocity potential theory together with the boundary element method. The ice sheet is modeled as a thin elastic plate with uniform properties, and zero bending moment and shear force conditions are enforced at the cracks. The Green function satisfying all the boundary conditions including those at cracks, apart from that on the body surface, is derived and is expressed in an explicit integral form. The boundary integral equation for the velocity potential is constructed with an unknown source distribution over the body surface only. The wave/crack interaction problem without the body is first solved directly without the need for source. The convergence and comparison studies are undertaken to show the accuracy and reliability of the solution procedure. Detailed numerical results through the hydrodynamic coefficients and wave exciting forces are provided for a body submerged below double cracks and an array of cracks. Some unique features are observed, and their mechanisms are analyzed.