Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Improved representation of the contemporary Greenland ice sheet firn layer by IMAU-FDM v1.2G

View through CrossRef
Abstract. The firn layer that covers 90 % of the Greenland ice sheet (GrIS) plays an important role in determining the response of the ice sheet to climate change. Meltwater can percolate into the firn layer and refreeze at greater depths, thereby temporarily preventing mass loss. However, as global warming leads to increasing surface melt, more surface melt may refreeze in the firn layer, thereby reducing the capacity to buffer subsequent episodes of melt. This can lead to a tipping point in meltwater runoff. It is therefore important to study the evolution of the Greenland firn layer in the past, present and future. In this study, we present the latest version of our firn model, IMAU-FDM (Firn Densification Model), with an application to the GrIS. We improved the density of freshly fallen snow, the dry-snow densification rate and the firn's thermal conductivity using recently published parameterizations and by calibrating to an extended set of observations of firn density, temperature and liquid water content at the GrIS. Overall, the updated model settings lead to higher firn air content and higher 10 m firn temperatures, owing to a lower density near the surface. The effect of the new model settings on the surface elevation change is investigated through three case studies located at Summit, KAN-U and FA-13. Most notably, the updated model shows greater inter- and intra-annual variability in elevation and an increased sensitivity to climate forcing.
Title: Improved representation of the contemporary Greenland ice sheet firn layer by IMAU-FDM v1.2G
Description:
Abstract.
The firn layer that covers 90 % of the Greenland ice sheet (GrIS) plays an important role in determining the response of the ice sheet to climate change.
Meltwater can percolate into the firn layer and refreeze at greater depths, thereby temporarily preventing mass loss.
However, as global warming leads to increasing surface melt, more surface melt may refreeze in the firn layer, thereby reducing the capacity to buffer subsequent episodes of melt.
This can lead to a tipping point in meltwater runoff.
It is therefore important to study the evolution of the Greenland firn layer in the past, present and future.
In this study, we present the latest version of our firn model, IMAU-FDM (Firn Densification Model), with an application to the GrIS.
We improved the density of freshly fallen snow, the dry-snow densification rate and the firn's thermal conductivity using recently published parameterizations and by calibrating to an extended set of observations of firn density, temperature and liquid water content at the GrIS.
Overall, the updated model settings lead to higher firn air content and higher 10 m firn temperatures, owing to a lower density near the surface.
The effect of the new model settings on the surface elevation change is investigated through three case studies located at Summit, KAN-U and FA-13.
Most notably, the updated model shows greater inter- and intra-annual variability in elevation and an increased sensitivity to climate forcing.

Related Results

Improved modelling of the present-day Greenland firn layer
Improved modelling of the present-day Greenland firn layer
<p>Recent studies indicate that a declining surface mass balance will dominate the Greenland Ice Sheet’s (GrIS) contribution to 21<sup>st&...
Impact of climate forcing time step on the modelled ice-sheet firn layer
Impact of climate forcing time step on the modelled ice-sheet firn layer
Abstract. The firn layer regulates how an ice-sheet responds to climate change by modifying how changes in surface temperature, snow accumulation and ablation affect the ice-sheet ...
A Physics-based Framework to Infer Firn Properties on Antarctic Ice Shelves from ASCAT Observations
A Physics-based Framework to Infer Firn Properties on Antarctic Ice Shelves from ASCAT Observations
Abstract. The stability of Antarctic ice shelves is closely linked to the properties of the firn layer, which regulates meltwater retention and influences ice shelf vulnerability t...
Evolution of the Antarctic firn layer until 2100 under two climate change scenarios. 
Evolution of the Antarctic firn layer until 2100 under two climate change scenarios. 
<p>Firn covers ~99% of the Antarctic ice sheet, providing pore space in which nearly all of the surface meltwater refreezes or is retained in liquid form. For now, th...
Changing glacier firn in Central Asia and its impact on glacier mass balance
Changing glacier firn in Central Asia and its impact on glacier mass balance
Glaciers in the Central Asian mountain ranges Tien Shan, Pamir and Pamir Alay are important water reservoirs for the dry low lands. These mountain glaciers attracted scientific int...
Vulnerability of Firn to Hydrofracture, Part II: Greenland’s Ice Slab Regions
Vulnerability of Firn to Hydrofracture, Part II: Greenland’s Ice Slab Regions
Hydrofracture and rapid lake drainage can transport surface meltwater to the bed of the Greenland Ice Sheet, thereby coupling surface mass balance processes and dynamic mass loss. ...
Spatial response of Greenland’s firn layer to NAO variability
Spatial response of Greenland’s firn layer to NAO variability
Changes in the Greenland ice sheet (GrIS) firn layer may impact its ability to retain meltwater. These changes also need to be accounted for when converting measured ice sheet volu...
Ground ice detection and implications for permafrost geomorphology
Ground ice detection and implications for permafrost geomorphology
Most permafrost contains ground ice, often as pore ice or thin veins or lenses of ice. In certain circumstance, larger bodies of ice can form, such as ice wedges, or massive lenses...

Back to Top