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A Theoretical Model of Wind-Wave Growth Over an Ice-Covered Sea
by
Zhang Changpeng
, Zhao, Xin
in
Air-ice interface
/ Boundary conditions
/ Boundary layer flow
/ Elastic waves
/ Elasticity
/ Flow stability
/ Gravity waves
/ Ice cover
/ Interface stability
/ Shear stress
/ Two dimensional flow
/ Two dimensional models
/ Velocity
/ Velocity distribution
/ Velocity profiles
/ Viscoelasticity
/ Wave generation
/ Wind speed
/ Wind velocities
/ Wind waves
2021
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A Theoretical Model of Wind-Wave Growth Over an Ice-Covered Sea
by
Zhang Changpeng
, Zhao, Xin
in
Air-ice interface
/ Boundary conditions
/ Boundary layer flow
/ Elastic waves
/ Elasticity
/ Flow stability
/ Gravity waves
/ Ice cover
/ Interface stability
/ Shear stress
/ Two dimensional flow
/ Two dimensional models
/ Velocity
/ Velocity distribution
/ Velocity profiles
/ Viscoelasticity
/ Wave generation
/ Wind speed
/ Wind velocities
/ Wind waves
2021
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While trying to remove the title from your shelf something went wrong :( Kindly try again later!
Do you wish to request the book?
A Theoretical Model of Wind-Wave Growth Over an Ice-Covered Sea
by
Zhang Changpeng
, Zhao, Xin
in
Air-ice interface
/ Boundary conditions
/ Boundary layer flow
/ Elastic waves
/ Elasticity
/ Flow stability
/ Gravity waves
/ Ice cover
/ Interface stability
/ Shear stress
/ Two dimensional flow
/ Two dimensional models
/ Velocity
/ Velocity distribution
/ Velocity profiles
/ Viscoelasticity
/ Wave generation
/ Wind speed
/ Wind velocities
/ Wind waves
2021
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A Theoretical Model of Wind-Wave Growth Over an Ice-Covered Sea
Journal Article
A Theoretical Model of Wind-Wave Growth Over an Ice-Covered Sea
2021
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Overview
A wind-wave generation model over an ice-covered sea is proposed. The wind velocity over the ice upper surface is decomposed into the mean velocity profile of the boundary-layer flow and small perturbations, while the ice cover is modelled as a viscoelastic layer, with the water part modelled as an inviscid fluid. The present model is based on two-dimensional linear flow-instability theory, with no-slip boundary conditions at the air–ice interface, and both normal and shear stress boundary conditions matched on the air–ice interface. It is shown that the model converges to the field and experimental data for open-water cases. The ice elasticity is found to be the critical factor for generating wind waves, and the generation of flexural-gravity waves and elastic waves in ice is analyzed.
Publisher
Springer Nature B.V
Subject
/ Velocity
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