The role of thermal contraction crack polygons in cold-desert fluvial systems

Abstract Thermal contraction crack polygons modify the generation, transport, and storage of water in Wright Valley gullies. Water generation is contributed to by trapping of windblown snow in polygon troughs. Water transport is modified by changes to the ice-cement table and active layer topography...

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Published in:Antarctic Science
Main Authors: Levy, Joseph S., Head, James W., Marchant, David R.
Format: Article in Journal/Newspaper
Language:English
Published: Cambridge University Press (CUP) 2008
Subjects:
Online Access:https://doi.org/10.1017/s0954102008001375
https://www.cambridge.org/core/services/aop-cambridge-core/content/view/S0954102008001375
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author Levy, Joseph S.
Head, James W.
Marchant, David R.
author_facet Levy, Joseph S.
Head, James W.
Marchant, David R.
author_sort Levy, Joseph S.
collection Unknown
container_issue 6
container_start_page 565
container_title Antarctic Science
container_volume 20
description Abstract Thermal contraction crack polygons modify the generation, transport, and storage of water in Wright Valley gullies. Water generation is contributed to by trapping of windblown snow in polygon troughs. Water transport is modified by changes to the ice-cement table and active layer topography caused by polygon trough formation. Water storage is modified by sediment grain-size distribution within polygons in gully distal hyporheic zones. Patterned ground morphological variation can serve as an indicator of fluvial modification, ranging from nearly unmodified composite-wedge polygons to polygons forming in association with gully channels. Thermal contraction crack polygons may also constrain the gully formation sequence, suggesting the continuous presence of permafrost beneath the Wright Valley gullies during the entire period of gully emplacement. This analysis provides a framework for understanding the relationships between polygons and gullies observed on Mars. If comparable stratigraphic relationships can be documented, the presence of an analogous impermeable ice-cemented layer beneath the gullies can be inferred, suggesting an atmospheric source for Martian gully-carving fluids.
format Article in Journal/Newspaper
genre Antarctic Science
Ice
permafrost
wedge*
genre_facet Antarctic Science
Ice
permafrost
wedge*
geographic The Gully
Wright Valley
geographic_facet The Gully
Wright Valley
id crcambridgeupr:10.1017/s0954102008001375
institution Open Polar
language English
long_lat ENVELOPE(-57.731,-57.731,51.567,51.567)
ENVELOPE(161.833,161.833,-77.517,-77.517)
op_collection_id crcambridgeupr
op_container_end_page 579
op_doi https://doi.org/10.1017/s0954102008001375
op_rights https://www.cambridge.org/core/terms
op_source Antarctic Science
volume 20, issue 6, page 565-579
ISSN 0954-1020 1365-2079
publishDate 2008
publisher Cambridge University Press (CUP)
record_format openpolar
spelling crcambridgeupr:10.1017/s0954102008001375 2026-03-29T14:46:23+00:00 The role of thermal contraction crack polygons in cold-desert fluvial systems Levy, Joseph S. Head, James W. Marchant, David R. 2008 https://doi.org/10.1017/s0954102008001375 https://www.cambridge.org/core/services/aop-cambridge-core/content/view/S0954102008001375 en eng Cambridge University Press (CUP) https://www.cambridge.org/core/terms Antarctic Science volume 20, issue 6, page 565-579 ISSN 0954-1020 1365-2079 journal-article 2008 crcambridgeupr https://doi.org/10.1017/s0954102008001375 2026-03-03T01:13:47Z Abstract Thermal contraction crack polygons modify the generation, transport, and storage of water in Wright Valley gullies. Water generation is contributed to by trapping of windblown snow in polygon troughs. Water transport is modified by changes to the ice-cement table and active layer topography caused by polygon trough formation. Water storage is modified by sediment grain-size distribution within polygons in gully distal hyporheic zones. Patterned ground morphological variation can serve as an indicator of fluvial modification, ranging from nearly unmodified composite-wedge polygons to polygons forming in association with gully channels. Thermal contraction crack polygons may also constrain the gully formation sequence, suggesting the continuous presence of permafrost beneath the Wright Valley gullies during the entire period of gully emplacement. This analysis provides a framework for understanding the relationships between polygons and gullies observed on Mars. If comparable stratigraphic relationships can be documented, the presence of an analogous impermeable ice-cemented layer beneath the gullies can be inferred, suggesting an atmospheric source for Martian gully-carving fluids. Article in Journal/Newspaper Antarctic Science Ice permafrost wedge* Unknown The Gully ENVELOPE(-57.731,-57.731,51.567,51.567) Wright Valley ENVELOPE(161.833,161.833,-77.517,-77.517) Antarctic Science 20 6 565 579
spellingShingle Levy, Joseph S.
Head, James W.
Marchant, David R.
The role of thermal contraction crack polygons in cold-desert fluvial systems
title The role of thermal contraction crack polygons in cold-desert fluvial systems
title_full The role of thermal contraction crack polygons in cold-desert fluvial systems
title_fullStr The role of thermal contraction crack polygons in cold-desert fluvial systems
title_full_unstemmed The role of thermal contraction crack polygons in cold-desert fluvial systems
title_short The role of thermal contraction crack polygons in cold-desert fluvial systems
title_sort role of thermal contraction crack polygons in cold-desert fluvial systems
url https://doi.org/10.1017/s0954102008001375
https://www.cambridge.org/core/services/aop-cambridge-core/content/view/S0954102008001375