Automated detection and analysis of surface calving waves with a terrestrial radar interferometer at the front of Eqip Sermia, Greenland
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Published:2021-12-13
Issue:12
Volume:15
Page:5659-5674
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ISSN:1994-0424
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Container-title:The Cryosphere
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language:en
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Short-container-title:The Cryosphere
Author:
Wehrlé AdrienORCID, Lüthi Martin P.ORCID, Walter Andrea, Jouvet GuillaumeORCID, Vieli AndreasORCID
Abstract
Abstract. Glacier calving is a key dynamical process of the Greenland Ice Sheet
and a major driver of its increasing mass loss. Calving waves, generated
by the sudden detachment of ice from the glacier terminus, can reach tens
of meters in height and provide very valuable insights into quantifying calving activity. In this study, we present a new method for the detection of source location, timing, and magnitude of calving waves using a terrestrial radar interferometer. This method was applied to 11 500 1 min interval acquisitions from Eqip Sermia, West Greenland, in July 2018. Over 7 d, more than 2000 calving waves were detected, including waves generated by submarine calving, which are difficult to observe with other methods. Quantitative assessment with a wave power index (WPI) yields a higher wave activity (+49 %) and higher temporally cumulated WPI (+34 %) in deep water than under shallow conditions. Subglacial meltwater plumes, occurring 2.3 times more often in the deep sector, increase WPI and the number of waves by a factor of 1.8 and 1.3, respectively, in the deep and shallow sector. We therefore explain the higher calving activity in the deep sector by a combination of more frequent meltwater plumes and more efficient calving enhancement linked with better connections to warm deep ocean water.
Funder
Universität Zürich Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung
Publisher
Copernicus GmbH
Subject
Earth-Surface Processes,Water Science and Technology
Reference49 articles.
1. Amundson, J., Truffer, M., Lüthi, M. P., Fahnestock, M., Motyka, R. J., and West, M.: Glacier, fjord, and seismic response to recent large calving
events, Jakobshavn Isbræ, Greenland, Geophys. Res. Lett., 35, L22501, https://doi.org/10.1029/2008GL035281, 2008. a, b 2. Amundson, J., Fahnestock, M., Truffer, M., Brown, J., Lüthi, M., and
Motyka, R.: Ice mélange dynamics and implications for terminus stability,
Jakobshavn Isbræ, Greenland, J. Geophys. Res, 115, F01005,
https://doi.org/10.1029/2009JF001405, 2010. a, b 3. Amundson, J. M., Clinton, J. F., Fahnestock, M., Truffer, M., Lüthi, M. P., and Motyka, R. J.: Observing calving-generated ocean waves with coastal
broadband seismometers, Jakobshavn Isbræ, Greenland, Ann. Glaciol., 60, 79–84, https://doi.org/10.3189/2012/AoG60A200, 2012. a 4. Bartholomaus, T. C., Larsen, C. F., and O'Neel, S.: Does calving matter?
Evidence for significant submarine melt, Earth Planet. Sc. Lett., 380, 21–30, 2013. a 5. Benn, D. I., Åström, J., Zwinger, T., Todd, J., Nick, F. M., Cook, S., Hulton, N. R., and Luckman, A.: Melt-Under-Cutting and Buoyancy-Driven
Calving From Tidewater Glaciers: New Insights From Discrete Element and
Continuum Model Simulations, J. Glaciol., 63, 691–702, https://doi.org/10.1017/jog.2017.41, 2017. a
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