Skip to main content
dPanther Home
|
Sea Level Rise
mydPanther Home
Recent Antarctic ice mass loss from radar interferometry and regional climate modelling
Item menu
Print
Send
Add
Share
Description
Standard View
MARC View
Metadata
Usage Statistics
STANDARD VIEW
MARC VIEW
METADATA
USAGE STATISTICS
Permanent Link:
http://dpanther.fiu.edu/dpService/dpPurlService/purl/FI15062092/00001
Material Information
Title:
Recent Antarctic ice mass loss from radar interferometry and regional climate modelling
Series Title:
Nature Geoscience Volume 1
Creator:
Ringot, Eric
Bamber, Jonathan L.
Van den Broeke, Michiel R.
Davis, Curt
Li, Yonghong
Van de Berg, Willem Jan
Van Meijgaard, Erik
Publisher:
Nature Publishing Group
Publication Date:
2008
Language:
English
Subjects
Subjects / Keywords:
Climate Change
( lcsh )
Antarctica
( lcsh )
Interferometry
( lcsh )
Ice Shelves
( lcsh )
Notes
Abstract:
Large uncertainties remain in the current and future contribution to sea level rise from Antarctica. Climate warming may increase snowfall in the continent’s interior1–3, but enhance glacier discharge at the coast where warmer air and ocean temperatures erode the buttressing ice shelves4–11. Here, we use satellite interferometric synthetic-aperture radar observations from 1992 to 2006 covering 85% of Antarctica’s coastline to estimate the total mass flux into the ocean. We compare the mass fluxes from large drainage basin units with interior snow accumulation calculated from a regional atmospheric climate model for 1980 to 2004. In East Antarctica, small glacier losses in Wilkes Land and glacier gains at the mouths of the Filchner and Ross ice shelves combine to a near-zero loss of 4±61 Gt yr−1. In West Antarctica, widespread losses along the Bellingshausen and Amundsen seas increased the ice sheet loss by 59% in 10 years to reach 132±60 Gt yr−1 in 2006. In the Peninsula, losses increased by 140% to reach 60±46 Gt yr−1 in 2006. Losses are concentrated along narrow channels occupied by outlet glaciers and are caused by ongoing and past glacier acceleration. Changes in glacier flow therefore have a significant, if not dominant impact on ice sheet mass balance. ( English )
Record Information
Source Institution:
Florida International University
Rights Management:
Please contact the owning institution for licensing and permissions. It is the user's responsibility to ensure use does not violate any third party rights.
dpSobek Membership
Aggregations:
Sea Level Rise
***This is default web skin for this SobekCM digital library.
Developed for the
University of Florida Digital Collections
For any questions about this system, email
Mark.V.Sullivan@gmail.com
Last updated January 2012 -
4.10.1