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Published on: September 2, 2019
Quantifying subsurface fracture damage in glaciers using fiber-optic seismology
Thomas S Hudson1, Fabian Walter2,3, Sebastian Noe1
1Department of Earth and Planetary Sciences, ETH-Zürich, Zürich, Switzerland.
Science Advances
|July 23, 2026
Summary
Distributed acoustic sensing quantifies subsurface fracture damage in glaciers. This seismic anisotropy method reveals fracture extent, crucial for predicting glacier stability and preventing ice avalanches.
Area of Science:
- Glaciology
- Seismology
- Geophysics
Background:
- Crevasses critically influence glacier and ice shelf stability.
- Deep crevasse penetration can lead to calving, ice avalanches, and catastrophic ice shelf collapse.
- Quantifying subsurface fracture damage in glaciers is challenging and largely unaddressed.
Purpose of the Study:
- To demonstrate the efficacy of distributed acoustic sensing (DAS) for quantifying subsurface fracture damage in alpine glaciers.
- To establish seismic anisotropy as a method for estimating fracture extent.
- To investigate crevasse icequake failure mechanisms and their contribution to ice volume loss.
Main Methods:
- Deployment of distributed acoustic sensing (DAS) technology at an alpine glacier.
- Analysis of seismic anisotropy to quantify the extent of subsurface fractures.
- Characterization of crevasse icequake failure mechanisms, focusing on tensile opening.
Main Results:
- DAS technology provides unprecedented detail in quantifying subsurface fracture damage.
- Seismic anisotropy effectively quantifies fracture extent within the glacier.
- Icequake-derived crevasse opening (approximately 8% of ice volume) is consistent with anisotropy estimates, indicating fracture-dominated damage.
Conclusions:
- Distributed acoustic sensing offers a scalable approach to monitor subsurface ice damage.
- This method complements existing satellite surface observations for a comprehensive understanding of glacier health.
- Findings have implications for monitoring hazardous alpine glaciers and assessing fracture extent in ice sheets and ice shelves.

