Characteristics of the 1979–2020 Antarctic firn layer simulated with IMAU-FDM v1.2A
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Published:2023-04-17
Issue:4
Volume:17
Page:1675-1696
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ISSN:1994-0424
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Container-title:The Cryosphere
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language:en
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Short-container-title:The Cryosphere
Author:
Veldhuijsen Sanne B. M.ORCID, van de Berg Willem JanORCID, Brils Max, Kuipers Munneke PeterORCID, van den Broeke Michiel R.ORCID
Abstract
Abstract. Firn simulations are essential for understanding Antarctic ice sheet
mass change, as they enable us to convert satellite altimetry observed
volume changes to mass changes and column thickness to ice thickness and
to quantify the meltwater buffering capacity of firn. Here, we present
and evaluate a simulation of the contemporary Antarctic firn layer
using the updated semi-empirical IMAU Firn Densification Model (IMAU-FDM) for the period
1979–2020. We have improved previous fresh-snow density and firn
compaction parameterizations and used updated atmospheric forcing. In
addition, the model has been calibrated and evaluated using 112 firn core density observations across the ice sheet. We found that 62 %
of the seasonal and 67 % of the decadal surface height variability
are due to variations in firn air content rather than firn
mass. Comparison of simulated surface elevation change with a
previously published multi-mission altimetry product for the period
2003–2015 shows that performance of the updated model has improved,
notably in Dronning Maud Land and Wilkes Land. However, a substantial
trend difference (>10 cm yr−1) remains in the Antarctic
Peninsula and Ellsworth Land, mainly caused by uncertainties in the
spin-up forcing. By estimating previous climatic conditions from ice
core data, these trend differences can be reduced by 38 %.
Funder
Nederlandse Organisatie voor Wetenschappelijk Onderzoek
Publisher
Copernicus GmbH
Subject
Earth-Surface Processes,Water Science and Technology
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