Seismicity on the western Greenland Ice Sheet : surface fracture in the vicinity of active moulins

dc.contributor.author Carmichael, Joshua D.
dc.contributor.author Joughin, Ian
dc.contributor.author Behn, Mark D.
dc.contributor.author Das, Sarah B.
dc.contributor.author King, Matt A.
dc.contributor.author Stevens, Laura A.
dc.contributor.author Lizarralde, Daniel
dc.date.accessioned 2015-08-18T17:41:56Z
dc.date.available 2015-12-25T09:49:25Z
dc.date.issued 2015-06-25
dc.description Author Posting. © American Geophysical Union, 2015. This article is posted here by permission of American Geophysical Union for personal use, not for redistribution. The definitive version was published in Journal of Geophysical Research: Earth Surface 120 (2015): 1082–1106, doi:10.1002/2014JF003398. en_US
dc.description.abstract We analyzed geophone and GPS measurements collected within the ablation zone of the western Greenland Ice Sheet during a ~35 day period of the 2011 melt season to study changes in ice deformation before, during, and after a supraglacial lake drainage event. During rapid lake drainage, ice flow speeds increased to ~400% of winter values, and icequake activity peaked. At times >7 days after drainage, this seismicity developed variability over both diurnal and longer periods (~10 days), while coincident ice speeds fell to ~150% of winter values and showed nightly peaks in spatial variability. Approximately 95% of all detected seismicity in the lake basin and its immediate vicinity was triggered by fracture propagation within near-surface ice (<330 m deep) that generated Rayleigh waves. Icequakes occurring before and during drainage frequently were collocated with the down flow (west) end of the primary hydrofracture through which the lake drained but shifted farther west and outside the lake basin after the drainage. We interpret these results to reveal vertical hydrofracture opening and local uplift during the drainage, followed by enhanced seismicity and ice flow on the downstream side of the lake basin. This region collocates with interferometric synthetic aperture radar-measured speedup in previous years and could reflect the migration path of the meltwater supplied to the bed by the lake. The diurnal seismic signal can be associated with nightly reductions in surface melt input that increase effective basal pressure and traction, thereby promoting elevated strain in the surficial ice. en_US
dc.description.embargo 2015-12-25 en_US
dc.description.sponsorship Research by J. Carmichael was supported by a NASA NESSF Fellowship grant NNX08AU82H and NSF grant ANT-0424589. The fieldwork and additional analyses were supported by the National Science Foundation's Office of Polar Programs (NSF-OPP) through ARC-1023382, awarded to I. Joughin, and ARC-1023364, awarded to S. B. Das and M. D. Behn. Matt King is a recipient of an Australian Research Council Future Fellowship (project number FT110100207). en_US
dc.format.mimetype application/pdf
dc.identifier.citation Journal of Geophysical Research: Earth Surface 120 (2015): 1082–1106 en_US
dc.identifier.doi 10.1002/2014JF003398
dc.identifier.uri https://hdl.handle.net/1912/7465
dc.language.iso en_US en_US
dc.publisher John Wiley & Sons en_US
dc.relation.uri https://doi.org/10.1002/2014JF003398
dc.subject Western Greenland Ice Sheet en_US
dc.subject Icequakes en_US
dc.subject Statistical signal processing en_US
dc.subject GPS en_US
dc.subject Supraglacial lakes en_US
dc.subject Seismic threshold monitoring en_US
dc.title Seismicity on the western Greenland Ice Sheet : surface fracture in the vicinity of active moulins en_US
dc.type Article en_US
dspace.entity.type Publication
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