Articles | Volume 19, issue 2
https://doi.org/10.5194/tc-19-713-2025
https://doi.org/10.5194/tc-19-713-2025
Research article
 | 
13 Feb 2025
Research article |  | 13 Feb 2025

Amundsen Sea Embayment accumulation variability measured with global navigation satellite system interferometric reflectometry

Andrew O. Hoffman, Michelle L. Maclennan, Jan Lenaerts, Kristine M. Larson, and Knut Christianson

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Cited articles

Adusumilli, S., Fish, M., Fricker, H. A., and Medley, B.: Atmospheric River Precipitation Contributed to Rapid Increases in Surface Height of the West Antarctic Ice Sheet in 2019, Geophys. Res. Lett., 48, e2020GL091076, https://doi.org/10.1029/2020gl091076, 2021. a
Baines, P. G. and Fraedrich, K.: Topographic effects on the mean tropospheric flow patterns around Antarctica, J. Atmos. Sci., 46, 3401–3415, 1989. a
Barriopedro, D., García-Herrera, R., and Trigo, R. M.: Application of blocking diagnosis methods to General Circulation Models. Part I: a novel detection scheme, Clim. Dynam., 35, 1373–1391, https://doi.org/10.1007/s00382-010-0767-5, 2010. a
Brands, S., Gutiérrez, J. M., and San-Martín, D.: Twentieth-century atmospheric river activity along the west coasts of Europe and North America: algorithm formulation, reanalysis uncertainty and links to atmospheric circulation patterns, Clim. Dynam., 48, 2771–2795, https://doi.org/10.1007/s00382-016-3095-6, 2017. a
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Short summary
Traditionally, glaciologists use global navigation satellite systems (GNSSs) to measure the surface elevation and velocity of glaciers to understand processes associated with ice flow. Using the interference of GNSS signals that bounce off of the ice sheet surface, we measure the surface height change near GNSS receivers in the Amundsen Sea Embayment (ASE). From surface height change, we infer daily accumulation rates that we use to understand the drivers of extreme precipitation in the ASE.
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