论文标题

建模冰山在开阔的海洋中倾覆

Modelling iceberg capsize in the open ocean

论文作者

Bonnet, P., Yastrebov, V. A., Queutey, P., Leroyer, A., Mangeney, A., Castelnau, O., Sergeant, A., Stutzmann, E., Montagner, J. -P.

论文摘要

在接近地面的冰川末端,产犊可能会导致公里尺度不稳定的冰山的倾斜。被倾斜冰山在冰川前部施加的瞬态接触力产生的地震波在远距离震荡距离上传播。这种地震信号的反转是深入了解实际和过去倾斜动力学的极大兴趣。但是,对于地球物理和气候研究而言,这是吸引地球物理和气候研究的冰山尺寸,不能仅从地震幅度中回收。这是因为倾覆是一个复杂的过程,涉及冰山,冰川和周围水之间的相互作用。本文介绍了建造完整型号的第一步,并专注于在没有冰川前或冰层冰淇淋的开阔海洋中的倾斜度上。冰山在开海中的倾斜动力学由计算流体动力学(CFD)模拟捕获,该模拟允许评估覆盖冰山周围的流体运动的复杂性以及海洋受到冰山旋转的影响。根据适当的无量纲变量表达结果,我们表明可以直接比较实验室尺度和田间尺度。发现倾斜动力学对冰山纵横比以及水和冰密度高度敏感。但是,同时处理流体动力学以及冰山和可变形冰川前部之间的接触需要高度复杂的耦合,这通常超出了流体结构相互作用软件的实际功能。因此,我们开发了一种半分析简化的流体结构模型(SAFIM),该模型可以在用于可变形固体接触动力学的固体力学计算中实现。该模型通过校准的阻力和添加质量效应来解释流体动力,并根据参考CFD模拟进行校准...

At near-grounded glacier termini, calving can lead to the capsize of kilometer-scale unstable icebergs. The transient contact force applied by the capsizing iceberg on the glacier front generates seismic waves that propagate over teleseismic distances. The inversion of this seismic signal is of great interest to get insight into actual and past capsize dynamics. However, the iceberg size, which is of interest for geophysical and climatic studies, cannot be recovered from the seismic amplitude alone. This is because the capsize is a complex process involving interactions between the iceberg, the glacier and the surrounding water. This paper presents a first step towards the construction of a complete model, and is focused on the capsize in the open ocean without glacier front nor ice-mélange. The capsize dynamics of an iceberg in the open ocean is captured by computational fluid dynamics (CFD) simulations, which allows assessing the complexity of the fluid motion around a capsizing iceberg and how far the ocean is affected by iceberg rotation. Expressing the results in terms of appropriate dimensionless variables, we show that laboratory scale and field scale capsizes can be directly compared. The capsize dynamics is found to be highly sensitive to the iceberg aspect ratio and to the water and ice densities. However, dealing at the same time with the fluid dynamics and the contact between the iceberg and the deformable glacier front requires highly complex coupling that often goes beyond actual capabilities of fluid-structure interaction softwares. Therefore, we developed a semi-analytical simplified fluid-structure model (SAFIM) that can be implemented in solid mechanics computations dealing with contact dynamics of deformable solids. This model accounts for hydrodynamic forces through calibrated drag and added-mass effects, and is calibrated against the reference CFD simulations...

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