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Ocean variability beneath Thwaites Eastern Ice Shelf driven by the Pine Island Bay Gyre strength
Dotto, T.S.; Heywood, K.J.; Hall, R.A.; Scambos, T.A.; Zheng, Y.; Nakayama, Y.; Hyogo, S.; Snow, T.; Wåhlin, A.K.; Wild, C.; Truffer, M.; Muto, A.; Alley, K.E.; Boehme, L.; Bortolotto, G.A.; Tyler, S.W.; Pettit, E. (2022). Ocean variability beneath Thwaites Eastern Ice Shelf driven by the Pine Island Bay Gyre strength. Nature Comm. 13(1): 13. https://dx.doi.org/10.1038/s41467-022-35499-5
In: Nature Communications. Nature Publishing Group: London. ISSN 2041-1723; e-ISSN 2041-1723, meer
Peer reviewed article  

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  • Dotto, T.S.
  • Heywood, K.J.
  • Hall, R.A.
  • Scambos, T.A.
  • Zheng, Y.
  • Nakayama, Y.
  • Hyogo, S.
  • Snow, T.
  • Wåhlin, A.K.
  • Wild, C.
  • Truffer, M.
  • Muto, A.
  • Alley, K.E.
  • Boehme, L.
  • Bortolotto, G.A.
  • Tyler, S.W.
  • Pettit, E.

Abstract
    West Antarctic ice-shelf thinning is primarily caused by ocean-driven basal melting. Here we assess ocean variability below Thwaites Eastern Ice Shelf (TEIS) and reveal the importance of local ocean circulation and sea-ice. Measurements obtained from two sub-ice-shelf moorings, spanning January 2020 to March 2021, show warming of the ice-shelf cavity and an increase in meltwater fraction of the upper sub-ice layer. Combined with ocean modelling results, our observations suggest that meltwater from Pine Island Ice Shelf feeds into the TEIS cavity, adding to horizontal heat transport there. We propose that a weakening of the Pine Island Bay gyre caused by prolonged sea-ice cover from April 2020 to March 2021 allowed meltwater-enriched waters to enter the TEIS cavity, which increased the temperature of the upper layer. Our study highlights the sensitivity of ocean circulation beneath ice shelves to local atmosphere-sea-ice-ocean forcing in neighbouring open oceans.

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