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Regional ice flow piracy following the collapse of Midgaard Glacier in Southeast Greenland

Author

Listed:
  • Flora Huiban

    (University of Copenhagen)

  • Romain Millan

    (IGE)

  • Kristian Kjellerup Kjeldsen

    (Geological Survey of Denmark and Greenland (GEUS))

  • Camilla S. Andresen

    (Geological Survey of Denmark and Greenland (GEUS))

  • Mads Dømgaard

    (University of Copenhagen)

  • Amaury Dehecq

    (IGE)

  • Stephen Brunt

    (University of Copenhagen)

  • Shfaqat Abbas Khan

    (Technical University of Denmark)

  • Jérémie Mouginot

    (IGE)

  • Anders Anker Bjørk

    (University of Copenhagen)

Abstract

Southeast Greenland contributes significantly to global sea level rise, with mass loss having increased by about 600% over the past 30 years due to enhanced melt and dynamic instabilities of marine-terminating glaciers. Accurate modelling of glacier dynamics is crucial to minimise uncertainties in predictions of future sea level rise, necessitating detailed reconstructions of long-term glacial histories. One key complexity in these models that is not well understood or documented is ice flow piracy, where ice is redirected between catchment basins, significantly influencing regional glacier dynamics and mass balance. Here, we document and characterise the collapse of Midgaard Glacier in Southeast Greenland using a multi-data approach, providing a 90-year record of the area’s complex glacial history. Initiated over 80 years ago, this collapse triggered catchment-scale dynamic changes in several neighbouring glaciers, impacting local glacial stability throughout the 20th century and into the present. Our analysis reveals that catchment-scale ice flow piracy can cause substantial disturbances in mass balance evolution and catchment reconfigurations, independent of climatic conditions. These findings underscore the importance of understanding long-term changes in complex glacier systems to make accurate predictions of future glacial mass loss and associated sea-level rise.

Suggested Citation

  • Flora Huiban & Romain Millan & Kristian Kjellerup Kjeldsen & Camilla S. Andresen & Mads Dømgaard & Amaury Dehecq & Stephen Brunt & Shfaqat Abbas Khan & Jérémie Mouginot & Anders Anker Bjørk, 2024. "Regional ice flow piracy following the collapse of Midgaard Glacier in Southeast Greenland," Nature Communications, Nature, vol. 15(1), pages 1-10, December.
  • Handle: RePEc:nat:natcom:v:15:y:2024:i:1:d:10.1038_s41467-024-54045-z
    DOI: 10.1038/s41467-024-54045-z
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    References listed on IDEAS

    as
    1. Shfaqat A. Khan & Anders A. Bjørk & Jonathan L. Bamber & Mathieu Morlighem & Michael Bevis & Kurt H. Kjær & Jérémie Mouginot & Anja Løkkegaard & David M. Holland & Andy Aschwanden & Bao Zhang & Veit H, 2020. "Centennial response of Greenland’s three largest outlet glaciers," Nature Communications, Nature, vol. 11(1), pages 1-9, December.
    2. J. A. Smith & T. J. Andersen & M. Shortt & A. M. Gaffney & M. Truffer & T. P. Stanton & R. Bindschadler & P. Dutrieux & A. Jenkins & C.-D. Hillenbrand & W. Ehrmann & H. F. J. Corr & N. Farley & S. Cro, 2017. "Sub-ice-shelf sediments record history of twentieth-century retreat of Pine Island Glacier," Nature, Nature, vol. 541(7635), pages 77-80, January.
    3. Henning Åkesson & Mathieu Morlighem & Johan Nilsson & Christian Stranne & Martin Jakobsson, 2022. "Petermann ice shelf may not recover after a future breakup," Nature Communications, Nature, vol. 13(1), pages 1-9, December.
    4. Kathryn L. Gunn & Stephen R. Rintoul & Matthew H. England & Melissa M. Bowen, 2023. "Recent reduced abyssal overturning and ventilation in the Australian Antarctic Basin," Nature Climate Change, Nature, vol. 13(6), pages 537-544, June.
    5. Emily C. Geyman & Ward van Pelt & Adam C. Maloof & Harald Faste Aas & Jack Kohler, 2022. "Historical glacier change on Svalbard predicts doubling of mass loss by 2100," Nature, Nature, vol. 601(7893), pages 374-379, January.
    6. Nathan Maier & Florent Gimbert & Fabien Gillet-Chaulet, 2022. "Threshold response to melt drives large-scale bed weakening in Greenland," Nature, Nature, vol. 607(7920), pages 714-720, July.
    7. Qian Li & Matthew H. England & Andrew McC. Hogg & Stephen R. Rintoul & Adele K. Morrison, 2023. "Abyssal ocean overturning slowdown and warming driven by Antarctic meltwater," Nature, Nature, vol. 615(7954), pages 841-847, March.
    8. J. A. Smith & T. J. Andersen & M. Shortt & A. M. Gaffney & M. Truffer & T. P. Stanton & R. Bindschadler & P. Dutrieux & A. Jenkins & C.-D. Hillenbrand & W. Ehrmann & H. F. J. Corr & N. Farley & S. Cro, 2017. "Correction: Corrigendum: Sub-ice-shelf sediments record history of twentieth-century retreat of Pine Island Glacier," Nature, Nature, vol. 549(7671), pages 292-292, September.
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