Interaction between a uniform current and a submerged cylinder in a marginal ice zone

The interaction between a uniform current with a circular cylinder submerged in a fluid covered by a semi-infinite ice sheet is considered analytically. The ice sheet is modelled as an elastic thin plate, and the fluid flow is described by the linearised velocity potential theory. The Green function...

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Main Authors: Yang, YF, Wu, GX, Ren, K
Format: Article in Journal/Newspaper
Language:English
Published: Cambridge University Press (CUP) 2024
Subjects:
Online Access:https://discovery.ucl.ac.uk/id/eprint/10191117/3/Yang_Interaction%20between%20a%20uniform%20current%20and%20a%20submerged%20cylinder%20in%20a%20marginal%20ice%20zone_VoR.pdf
https://discovery.ucl.ac.uk/id/eprint/10191117/
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spelling ftucl:oai:eprints.ucl.ac.uk.OAI2:10191117 2024-05-19T07:42:06+00:00 Interaction between a uniform current and a submerged cylinder in a marginal ice zone Yang, YF Wu, GX Ren, K 2024-04-10 text https://discovery.ucl.ac.uk/id/eprint/10191117/3/Yang_Interaction%20between%20a%20uniform%20current%20and%20a%20submerged%20cylinder%20in%20a%20marginal%20ice%20zone_VoR.pdf https://discovery.ucl.ac.uk/id/eprint/10191117/ eng eng Cambridge University Press (CUP) https://discovery.ucl.ac.uk/id/eprint/10191117/3/Yang_Interaction%20between%20a%20uniform%20current%20and%20a%20submerged%20cylinder%20in%20a%20marginal%20ice%20zone_VoR.pdf https://discovery.ucl.ac.uk/id/eprint/10191117/ open Journal of Fluid Mechanics , 984 , Article A50. (2024) Article 2024 ftucl 2024-04-23T23:31:12Z The interaction between a uniform current with a circular cylinder submerged in a fluid covered by a semi-infinite ice sheet is considered analytically. The ice sheet is modelled as an elastic thin plate, and the fluid flow is described by the linearised velocity potential theory. The Green function or the velocity potential due to a source is first obtained. As the water surface is divided into two semi-infinite parts with different boundary conditions, the Wiener–Hopf method (WHM) offers significant advantages over alternative approaches and is consequently adopted. To do that, the distribution of the roots of the dispersion equation for fluid fully covered by an ice sheet in the complex plane is first analysed systematically, which does not seem to have been done before. The variations of these roots with the Froude number are investigated, especially their effects or factorisation and decomposition required in the WHM. The result is verified by comparing with that obtained from the matched eigenfunction expansion method. Through differentiating the Green function with respect to the source position, the potentials due to multipoles are obtained, which are employed to construct the velocity potential for the circular cylinder. Extensive results are provided for hydrodynamic forces on the cylinder and wave profiles, and some unique features are discussed. In particular, it is found that the forces can be highly oscillatory with the Froude number when the body is below the ice sheet, whereas such an oscillation does not exist when the body is below the free surface. Article in Journal/Newspaper Ice Sheet University College London: UCL Discovery
institution Open Polar
collection University College London: UCL Discovery
op_collection_id ftucl
language English
description The interaction between a uniform current with a circular cylinder submerged in a fluid covered by a semi-infinite ice sheet is considered analytically. The ice sheet is modelled as an elastic thin plate, and the fluid flow is described by the linearised velocity potential theory. The Green function or the velocity potential due to a source is first obtained. As the water surface is divided into two semi-infinite parts with different boundary conditions, the Wiener–Hopf method (WHM) offers significant advantages over alternative approaches and is consequently adopted. To do that, the distribution of the roots of the dispersion equation for fluid fully covered by an ice sheet in the complex plane is first analysed systematically, which does not seem to have been done before. The variations of these roots with the Froude number are investigated, especially their effects or factorisation and decomposition required in the WHM. The result is verified by comparing with that obtained from the matched eigenfunction expansion method. Through differentiating the Green function with respect to the source position, the potentials due to multipoles are obtained, which are employed to construct the velocity potential for the circular cylinder. Extensive results are provided for hydrodynamic forces on the cylinder and wave profiles, and some unique features are discussed. In particular, it is found that the forces can be highly oscillatory with the Froude number when the body is below the ice sheet, whereas such an oscillation does not exist when the body is below the free surface.
format Article in Journal/Newspaper
author Yang, YF
Wu, GX
Ren, K
spellingShingle Yang, YF
Wu, GX
Ren, K
Interaction between a uniform current and a submerged cylinder in a marginal ice zone
author_facet Yang, YF
Wu, GX
Ren, K
author_sort Yang, YF
title Interaction between a uniform current and a submerged cylinder in a marginal ice zone
title_short Interaction between a uniform current and a submerged cylinder in a marginal ice zone
title_full Interaction between a uniform current and a submerged cylinder in a marginal ice zone
title_fullStr Interaction between a uniform current and a submerged cylinder in a marginal ice zone
title_full_unstemmed Interaction between a uniform current and a submerged cylinder in a marginal ice zone
title_sort interaction between a uniform current and a submerged cylinder in a marginal ice zone
publisher Cambridge University Press (CUP)
publishDate 2024
url https://discovery.ucl.ac.uk/id/eprint/10191117/3/Yang_Interaction%20between%20a%20uniform%20current%20and%20a%20submerged%20cylinder%20in%20a%20marginal%20ice%20zone_VoR.pdf
https://discovery.ucl.ac.uk/id/eprint/10191117/
genre Ice Sheet
genre_facet Ice Sheet
op_source Journal of Fluid Mechanics , 984 , Article A50. (2024)
op_relation https://discovery.ucl.ac.uk/id/eprint/10191117/3/Yang_Interaction%20between%20a%20uniform%20current%20and%20a%20submerged%20cylinder%20in%20a%20marginal%20ice%20zone_VoR.pdf
https://discovery.ucl.ac.uk/id/eprint/10191117/
op_rights open
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