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雪断裂实验中裂纹扩展动力学的微观力学见解。

Micro-mechanical insights into the dynamics of crack propagation in snow fracture experiments.

作者信息

Bobillier Grégoire, Bergfeld Bastian, Dual Jürg, Gaume Johan, van Herwijnen Alec, Schweizer Jürg

机构信息

WSL Institute for Snow and Avalanche Research SLF, Davos, Switzerland.

Institute for Mechanical Systems, ETH Zurich, Zurich, Switzerland.

出版信息

Sci Rep. 2021 Jun 3;11(1):11711. doi: 10.1038/s41598-021-90910-3.

Abstract

Dry-snow slab avalanches result from crack propagation in a highly porous weak layer buried within a stratified and metastable snowpack. While our understanding of slab avalanche mechanisms improved with recent experimental and numerical advances, fundamental micro-mechanical processes remain poorly understood due to a lack of non-invasive monitoring techniques. Using a novel discrete micro-mechanical model, we reproduced crack propagation dynamics observed in field experiments, which employ the propagation saw test. The detailed microscopic analysis of weak layer stresses and bond breaking allowed us to define the crack tip location of closing crack faces, analyze its spatio-temporal characteristics and monitor the evolution of stress concentrations and the fracture process zone both in transient and steady-state regimes. Results highlight the occurrence of a steady state in crack speed and stress conditions for sufficiently long crack propagation distances (> 4 m). Crack propagation without external driving force except gravity is possible due to the local mixed-mode shear-compression stress nature at the crack tip induced by slab bending and weak layer volumetric collapse. Our result shed light into the microscopic origin of dynamic crack propagation in snow slab avalanche release that eventually will improve the evaluation of avalanche release sizes and thus hazard management and forecasting in mountainous regions.

摘要

干雪板层雪崩是由埋在分层且亚稳态积雪层内的高度多孔弱层中的裂缝扩展引起的。虽然随着最近实验和数值技术的进步,我们对板层雪崩机制的理解有所改善,但由于缺乏非侵入性监测技术,基本的微观力学过程仍然知之甚少。我们使用一种新颖的离散微观力学模型,再现了在采用传播锯试验的现场实验中观察到的裂缝扩展动力学。对弱层应力和粘结破坏的详细微观分析使我们能够确定闭合裂缝面的裂缝尖端位置,分析其时空特征,并监测瞬态和稳态下应力集中和断裂过程区的演变。结果表明,在足够长的裂缝扩展距离(>4米)下,裂缝速度和应力条件会出现稳态。由于板层弯曲和弱层体积坍塌在裂缝尖端引起的局部混合模式剪切压缩应力性质,除重力外无需外部驱动力即可实现裂缝扩展。我们的结果揭示了雪板层雪崩释放中动态裂缝扩展的微观起源,最终将改善对雪崩释放规模的评估,从而改进山区的灾害管理和预测。

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