

Author: Reiweger Ingrid Schweizer Jürg Dual Jürg Herrmann Hans Jürgen
Publisher: International Glaciological Society
ISSN: 1727-5652
Source: Journal of Glaciology, Vol.55, Iss.194, 2009-12, pp. : 997-1002
Disclaimer: Any content in publications that violate the sovereignty, the constitution or regulations of the PRC is not accepted or approved by CNPIEC.
Abstract
Dry-snow slab avalanches initiate from a failure in a weak snow layer below a cohesive slab. Snow is considered as a porous ice structure, and the strength distribution of the single elements of this structure, i.e. grains and bonds between grains, shows a high degree of disorder. On the bond or microstructural level, the failure process is believed to start if the fracturing of bonds between snow grains is not balanced by the formation of new bonds. We use a statistical fracture model – a fibre bundle model – to study the failure process in a weak snow layer. The model consists of fibres of various strengths representing single snow grains between two rigid plates which represent the slab above and the substratum below the weak layer. The fibres deform in a linear elastic manner and break instantly at their rupture strength. Broken fibres may sinter (re-bond) and regain strength after a finite sintering time. We show that the different characteristic times for breaking and sintering lead to the rate dependence of snow strength. This is, to our knowledge, the first statistical model to reproduce the ductile-to-brittle transition which snow exhibits with increasing strain rate. When the model is applied to simulate experimental stress–strain curves for different strain rates, the model and experimental results are in fair agreement.
Related content




Snow Modelling in the Hadley Centre GCM
By Essery R.
Physics and Chemistry of the Earth, Vol. 23, Iss. 5, 1998-01 ,pp. :


Modelling cohesion in snow avalanche flow
Journal of Glaciology, Vol. 61, Iss. 229, 2015-11 ,pp. :


A fracture-entrainment model for snow avalanches
By Cherepanov Genady P. Esparragoza Ivan E.
Journal of Glaciology, Vol. 54, Iss. 184, 2008-01 ,pp. :


The atmospheric snow-transport model: SnowDrift3D
By Schneiderbauer Simon Prokop Alexander
Journal of Glaciology, Vol. 57, Iss. 203, 2011-06 ,pp. :