The internal structure of the Brunt Ice Shelf from ice-penetrating radar analysis and implications for ice shelf fracture

The rate and direction of rift propagation through ice shelves depend on both the stress field and the heterogeneity (or otherwise) of the physical properties of the ice. The Brunt Ice Shelf in Antarctica has recently developed new rifts, which are being actively monitored as they lengthen and inter...

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Published in:The Cryosphere
Main Authors: King, Edward C., Rydt, Jan, Gudmundsson, G. Hilmar
Format: Text
Language:English
Published: 2018
Subjects:
Online Access:https://doi.org/10.5194/tc-12-3361-2018
https://tc.copernicus.org/articles/12/3361/2018/
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spelling ftcopernicus:oai:publications.copernicus.org:tc66218 2023-05-15T13:55:28+02:00 The internal structure of the Brunt Ice Shelf from ice-penetrating radar analysis and implications for ice shelf fracture King, Edward C. Rydt, Jan Gudmundsson, G. Hilmar 2018-11-27 application/pdf https://doi.org/10.5194/tc-12-3361-2018 https://tc.copernicus.org/articles/12/3361/2018/ eng eng doi:10.5194/tc-12-3361-2018 https://tc.copernicus.org/articles/12/3361/2018/ eISSN: 1994-0424 Text 2018 ftcopernicus https://doi.org/10.5194/tc-12-3361-2018 2020-07-20T16:23:04Z The rate and direction of rift propagation through ice shelves depend on both the stress field and the heterogeneity (or otherwise) of the physical properties of the ice. The Brunt Ice Shelf in Antarctica has recently developed new rifts, which are being actively monitored as they lengthen and interact with the internal structure of the ice shelf. Here we present the results of a ground-penetrating radar survey of the Brunt Ice Shelf aimed at understanding variations in the internal structure. We find that there are flow bands composed mostly of thick (ca. 250 m) meteoric ice interspersed with thinner (ca. 150 m) sections of ice shelf that have a large proportion of sea ice and seawater-saturated firn. Therefore the ice shelf is, in essence, a series of ice tongues cemented together with ice mélange. The changes in structure are related both to the thickness and flow speed of ice at the grounding line and to subsequent processes of firn accumulation and brine infiltration as the ice shelf flows towards the calving front. It is shown that rifts propagating through the Brunt Ice Shelf preferentially skirt the edges of blocks of meteoric ice and slow their rate of propagation when forced by the stress field to break through them, in contrast to the situation on other ice shelves where rift propagation speeds up in meteoric ice. Text Antarc* Antarctica Brunt Ice Shelf Ice Shelf Ice Shelves Sea ice Copernicus Publications: E-Journals Brunt Ice Shelf ENVELOPE(-22.500,-22.500,-74.750,-74.750) The Cryosphere 12 10 3361 3372
institution Open Polar
collection Copernicus Publications: E-Journals
op_collection_id ftcopernicus
language English
description The rate and direction of rift propagation through ice shelves depend on both the stress field and the heterogeneity (or otherwise) of the physical properties of the ice. The Brunt Ice Shelf in Antarctica has recently developed new rifts, which are being actively monitored as they lengthen and interact with the internal structure of the ice shelf. Here we present the results of a ground-penetrating radar survey of the Brunt Ice Shelf aimed at understanding variations in the internal structure. We find that there are flow bands composed mostly of thick (ca. 250 m) meteoric ice interspersed with thinner (ca. 150 m) sections of ice shelf that have a large proportion of sea ice and seawater-saturated firn. Therefore the ice shelf is, in essence, a series of ice tongues cemented together with ice mélange. The changes in structure are related both to the thickness and flow speed of ice at the grounding line and to subsequent processes of firn accumulation and brine infiltration as the ice shelf flows towards the calving front. It is shown that rifts propagating through the Brunt Ice Shelf preferentially skirt the edges of blocks of meteoric ice and slow their rate of propagation when forced by the stress field to break through them, in contrast to the situation on other ice shelves where rift propagation speeds up in meteoric ice.
format Text
author King, Edward C.
Rydt, Jan
Gudmundsson, G. Hilmar
spellingShingle King, Edward C.
Rydt, Jan
Gudmundsson, G. Hilmar
The internal structure of the Brunt Ice Shelf from ice-penetrating radar analysis and implications for ice shelf fracture
author_facet King, Edward C.
Rydt, Jan
Gudmundsson, G. Hilmar
author_sort King, Edward C.
title The internal structure of the Brunt Ice Shelf from ice-penetrating radar analysis and implications for ice shelf fracture
title_short The internal structure of the Brunt Ice Shelf from ice-penetrating radar analysis and implications for ice shelf fracture
title_full The internal structure of the Brunt Ice Shelf from ice-penetrating radar analysis and implications for ice shelf fracture
title_fullStr The internal structure of the Brunt Ice Shelf from ice-penetrating radar analysis and implications for ice shelf fracture
title_full_unstemmed The internal structure of the Brunt Ice Shelf from ice-penetrating radar analysis and implications for ice shelf fracture
title_sort internal structure of the brunt ice shelf from ice-penetrating radar analysis and implications for ice shelf fracture
publishDate 2018
url https://doi.org/10.5194/tc-12-3361-2018
https://tc.copernicus.org/articles/12/3361/2018/
long_lat ENVELOPE(-22.500,-22.500,-74.750,-74.750)
geographic Brunt Ice Shelf
geographic_facet Brunt Ice Shelf
genre Antarc*
Antarctica
Brunt Ice Shelf
Ice Shelf
Ice Shelves
Sea ice
genre_facet Antarc*
Antarctica
Brunt Ice Shelf
Ice Shelf
Ice Shelves
Sea ice
op_source eISSN: 1994-0424
op_relation doi:10.5194/tc-12-3361-2018
https://tc.copernicus.org/articles/12/3361/2018/
op_doi https://doi.org/10.5194/tc-12-3361-2018
container_title The Cryosphere
container_volume 12
container_issue 10
container_start_page 3361
op_container_end_page 3372
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