Quantifying the Impact of Bedrock Topography Uncertainty in Pine Island Glacier Projections for This Century

Abstract: The predicted Antarctic contribution to global‐mean sea‐level rise is one of the most uncertain among all major sources. Partly this is because of instability mechanisms of the ice flow over deep basins. Errors in bedrock topography can substantially impact the projected resilience of glac...

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Bibliographic Details
Published in:Geophysical Research Letters
Main Authors: Wernecke, Andreas, Edwards, Tamsin L., Holden, Philip B., Edwards, Neil R., Cornford, Stephen L.
Format: Article in Journal/Newspaper
Language:unknown
Published: 2022
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Online Access:https://oro.open.ac.uk/82612/
https://oro.open.ac.uk/82612/1/82612.pdf
https://doi.org/10.1029/2021gl096589
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Summary:Abstract: The predicted Antarctic contribution to global‐mean sea‐level rise is one of the most uncertain among all major sources. Partly this is because of instability mechanisms of the ice flow over deep basins. Errors in bedrock topography can substantially impact the projected resilience of glaciers against such instabilities. Here we analyze the Pine Island Glacier topography to derive a statistical model representation. Our model allows for inhomogeneous and spatially dependent uncertainties and avoids unnecessary smoothing from spatial averaging or interpolation. A set of topography realizations is generated representing our best estimate of the topographic uncertainty in ice sheet model simulations. The bedrock uncertainty alone creates a 5%–25% uncertainty in the predicted sea level rise contribution at year 2100, depending on friction law and climate forcing. Pine Island Glacier simulations on this new set are consistent with simulations on the BedMachine reference topography but diverge from Bedmap2 simulations.