Auclair Jean-Pierre, Dumont Dany, Lemieux Jean-François, Ritchie Hal
Institut des Sciences de la Terre (ISTerre), CNRS/Université Grenoble-Alpes, Saint-Martin d'Hères, 38400, France.
Department of Oceanography, Dalhousie University, Halifax, Nova Scotia, B3H 4R2, Canada.
Philos Trans A Math Phys Eng Sci. 2022 Oct 31;380(2235):20210261. doi: 10.1098/rsta.2021.0261. Epub 2022 Sep 12.
With the increasing resolution of operational forecasting models, the marginal ice zone (MIZ), the area where waves and sea ice interact, can now be better represented. However, the proper mechanics of wave propagation and attenuation in ice, and especially their influence on sea ice dynamics, still remain poorly understood and constrained in models. Observations have shown exponential wave energy decrease with distance in sea ice, particularly strong at higher frequencies. Some of this energy is transferred to the ice, breaking it into smaller floes and weakening it, as well as exerting a stress on the ice similar to winds and currents. In this article, we present a one-dimensional, fully integrated wave and ice model that has been developed to test different parameterizations of wave-ice interactions. The response of the ice cover to the wind and wave radiative stresses is investigated for a variety of wind, wave and ice conditions at different scales. Results of sensitivity analyses reveal the complex interplay between wave attenuation and rheological parameters and suggest that the compressive strength of the MIZ may be better represented by a Mohr-Coulomb parameterization with a nonlinear dependence on thickness. This article is part of the theme issue 'Theory, modelling and observations of marginal ice zone dynamics: multidisciplinary perspectives and outlooks'.
随着业务预报模型分辨率的提高,边缘冰区(MIZ),即海浪与海冰相互作用的区域,现在能够得到更好的呈现。然而,波浪在冰中的传播和衰减的具体机制,尤其是它们对海冰动力学的影响,在模型中仍然了解甚少且受到限制。观测表明,海冰中波浪能量随距离呈指数下降,在较高频率下尤为明显。部分能量传递给冰,将其破碎成更小的浮冰并使其变弱,同时对冰施加类似于风和洋流的应力。在本文中,我们展示了一个一维的、完全集成的波浪与冰模型,该模型已被开发用于测试波浪 - 冰相互作用的不同参数化。针对不同尺度下的各种风、浪和冰况,研究了冰盖对风浪辐射应力的响应。敏感性分析结果揭示了波浪衰减与流变参数之间的复杂相互作用,并表明边缘冰区的抗压强度可能通过对厚度具有非线性依赖的莫尔 - 库仑参数化得到更好的呈现。本文是主题特刊“边缘冰区动力学的理论、建模与观测:多学科视角与展望”的一部分。