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Petermann Glacier on the Brink: Progress, Challenges and InsightsPetermann Glacier, the largest marine-terminating glacier in northern Greenland based on catchment area and ice discharge, plays a key role in regulating ice discharge from the Greenland Ice Sheet into the Arctic Ocean. With an upstream catchment connected to the ice sheet interior via a deep subglacial canyon, its future stability has major implications for sea level rise. In this review, we synthesize recent advances in understanding Petermann’s dynamics across three critical interfaces: the ice–ocean, ice–atmosphere, and ice–bed boundaries. At the surface, observations show that reanalysis products underestimate air temperatures and melt, while regional climate models diverge significantly in their estimates of surface mass balance, underscoring the need for improved in situ data and models. At the ocean boundary, enhanced basal melting driven by both subglacial runoff and Atlantic water intrusions is identified as the dominant driver of recent mass loss of Petermann Glacier, with continued warming posing a serious threat to the stability of the floating tongue. At the bed, new geophysical synthesis reveals complex geology, likely spatial variability in geothermal heat flux, and the influence of the megacanyon on seasonal hydrology and velocity fluctuations. Petermann’s mass balance has been negative in recent decades without corresponding flow acceleration. However, the glacier has undergone significant calving events, and the current rifting that began in September 2025 highlights its vulnerability. This upcoming calving event underscores the timeliness of this review, as it will put Petermann Glacier’s terminus at its most retreated position since records began in 1923. The anticipated retreat of the ice tongue also reduces buttressing and brings the terminus closer to the grounding zone, and modeling studies suggest that calving within 12 km of the grounding zone could potentially trigger dynamic retreat, accelerating ice discharge, and a doubling of flow speeds. We conclude that improved observations, sustained monitoring of oceanographic and atmospheric properties, and high-resolution modeling are critical to constraining projections of Petermann Glacier’s future and its role in the stability of the Greenland Ice Sheet.
Document ID
20260007824
Acquisition Source
Goddard Space Flight Center
Document Type
Accepted Manuscript (Version with final changes)
Authors
Dominik Fahrner ORCID
(Geological Survey of Denmark and Greenland Copenhagen, Denmark)
William T Colgan ORCID
(Geological Survey of Denmark and Greenland Copenhagen, Denmark)
Joseph A MacGregor ORCID
(Goddard Space Flight Center Greenbelt, United States)
Peter Washam ORCID
(Cornell University Ithaca, United States)
Anja Løkkegaard ORCID
(Geological Survey of Denmark and Greenland Copenhagen, Denmark)
Shfaqat Abbas Khan ORCID
(Technical University of Denmark Kongens Lyngby, Denmark)
Date Acquired
August 13, 2026
Publication Date
August 14, 2026
Publication Information
Publication: Science Advances
Publisher: American Association For The Advancement of Science
Volume: 12
Issue: 33
Issue Publication Date: August 14, 2026
e-ISSN: 2375-2548
Subject Category
Meteorology and Climatology
Funding Number(s)
CONTRACT_GRANT: NNF23OC00807040
WBS: 279924.05.08.01.31
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
External Peer Committee
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