Reaction of a polar gravel‐spit system to atmospheric warming and glacier retreat as reflected by morphology and internal sediment geometries (South Shetland Islands, Antarctica)

Sedimentary architecture and morphogenetic evolution of a polar bay-mouth gravel-spit system are revealed based on topographic mapping, sedimentological data, radiocarbon dating and ground-penetrating radar investigations. Data document variable rates of spit progradation in reaction to atmospheric...

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Bibliographic Details
Published in:Earth Surface Processes and Landforms
Main Authors: Heredia Barión, Pablo, Lindhorst, Sebastian, Schutter, Ilona, Falk, Ulrike, Kuhn, Gerhard
Format: Article in Journal/Newspaper
Language:unknown
Published: Wiley 2019
Subjects:
Online Access:https://epic.awi.de/id/eprint/49517/
https://epic.awi.de/id/eprint/49517/1/Bari-n_et_al-2019-Earth_Surface_Processes_and_Landforms.pdf
https://doi.org/10.1002/esp.4565
https://hdl.handle.net/10013/epic.ded0f323-c5f2-4fa2-a0e8-a1749d454583
Description
Summary:Sedimentary architecture and morphogenetic evolution of a polar bay-mouth gravel-spit system are revealed based on topographic mapping, sedimentological data, radiocarbon dating and ground-penetrating radar investigations. Data document variable rates of spit progradation in reaction to atmospheric warming synchronous to the termination of the last glacial re-advance (LGR, 0.45–0.25 ka BP), the southern hemisphere equivalent of the Little Ice Age cooling period. Results show an interruption of spit progradation that coincides with the proposed onset of accelerated isostatic rebound in reaction to glacier retreat. Spit growth resumed in the late 19th century after the rate of isostatic rebound decreased, and continues until today. The direction of modern spit progradation, however, is rotated northwards compared with the growth axis of the early post-LGR spit. This is interpreted to reflect the shift and strengthening in the regional wind field during the last century. A new concept for the interplay of polar gravel-spit progradation and glacio-isostatic adjustment is presented, allowing for the prediction of future coastal evolution in comparable polar settings.