A diffusion approximation for ocean wave scatterings by randomly distributed ice floes

Xin Zhao*, Hayley Shen

*Corresponding author for this work

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Abstract

This study presents a continuum approach using a diffusion approximation method to solve the scattering of ocean waves by randomly distributed ice floes. In order to model both strong and weak scattering, the proposed method decomposes the wave action density function into two parts: the transmitted part and the scattered part. For a given wave direction, the transmitted part of the wave action density is defined as the part of wave action density in the same direction before the scattering; and the scattered part is a first order Fourier series approximation for the directional spreading caused by scattering. An additional approximation is also adopted for simplification, in which the net directional redistribution of wave action by a single scatterer is assumed to be the reflected wave action of a normally incident wave into a semi-infinite ice cover. Other required input includes the mean shear modulus, diameter and thickness of ice floes, and the ice concentration. The directional spreading of wave energy from the diffusion approximation is found to be in reasonable agreement with the previous solution using the Boltzmann equation. The diffusion model provides an alternative method to implement wave scattering into an operational wave model.

Original languageEnglish
Pages (from-to)21-27
Number of pages7
JournalOcean Modelling
Volume107
DOIs
Publication statusPublished - 1 Nov 2016

Keywords

  • Diffusion approximation
  • Directional spreading
  • Sea ice
  • Wave scattering

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Zhao, X., & Shen, H. (2016). A diffusion approximation for ocean wave scatterings by randomly distributed ice floes. Ocean Modelling, 107, 21-27. https://doi.org/10.1016/j.ocemod.2016.09.014