Mass balance and hydrological modeling of the Hardangerjøkulen ice cap in south-central Norway

A detailed, physically based one dimensional, column snowpack model (Crocus) has been incorporated into the hydrological model WRF-Hydro. This allows for direct surface mass balance simulation of glaciers and subsequent modeling of meltwater discharge from glaciers. To evaluate the new system (WRF-H...

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Main Authors: Eidhammer, Trude, Booth, Adam, Decker, Sven, Li, Lu, Barlage, Michael, Gochis, David, Rasmussen, Roy, Melvold, Kjetil, Nesje, Atle, Sobolowski, Stefan
Format: Text
Language:English
Published: 2020
Subjects:
Online Access:https://doi.org/10.5194/hess-2020-119
https://www.hydrol-earth-syst-sci-discuss.net/hess-2020-119/
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spelling ftcopernicus:oai:publications.copernicus.org:hessd84412 2023-05-15T16:21:54+02:00 Mass balance and hydrological modeling of the Hardangerjøkulen ice cap in south-central Norway Eidhammer, Trude Booth, Adam Decker, Sven Li, Lu Barlage, Michael Gochis, David Rasmussen, Roy Melvold, Kjetil Nesje, Atle Sobolowski, Stefan 2020-06-12 application/pdf https://doi.org/10.5194/hess-2020-119 https://www.hydrol-earth-syst-sci-discuss.net/hess-2020-119/ eng eng doi:10.5194/hess-2020-119 https://www.hydrol-earth-syst-sci-discuss.net/hess-2020-119/ eISSN: 1607-7938 Text 2020 ftcopernicus https://doi.org/10.5194/hess-2020-119 2020-06-15T16:22:02Z A detailed, physically based one dimensional, column snowpack model (Crocus) has been incorporated into the hydrological model WRF-Hydro. This allows for direct surface mass balance simulation of glaciers and subsequent modeling of meltwater discharge from glaciers. To evaluate the new system (WRF-Hydro/Glacier), WRF model simulations were downscaled to 1 km grid spacing to provide meteorological forcing data to the WRF-Hydro/Glacier system at 100 m grid spacing. Evaluation of the WRF downscaling showed that it compared well with in situ meteorological observations for most of the simulation period. The WRF-Hydro/Glacier system reproduced the glacier surface winter/summer and net mass balance, snow depth, surface albedo and glacier runoff well compared to observations. The WRF-Hydro/Glacier system is only activated over a priori designated glacier areas. This glacier area is initialized with observed glacier thickness and assumed to be pure ice (with corresponding ice density). This allows for melt of the glacier to continue after all accumulated snow has melted. Furthermore, the simulation of surface albedo over the glacier is more realistic as surface albedo is represented by snow where there is accumulated snow, and glacier ice when all accumulated snow is melted. The improved estimation of albedo has an appreciable impact on the discharge from the glacier during late summer. We have shown that the integrated snow pack system allows for improved glacier surface mass balance studies as well as hydrological studies. Text glacier Ice cap Copernicus Publications: E-Journals Norway
institution Open Polar
collection Copernicus Publications: E-Journals
op_collection_id ftcopernicus
language English
description A detailed, physically based one dimensional, column snowpack model (Crocus) has been incorporated into the hydrological model WRF-Hydro. This allows for direct surface mass balance simulation of glaciers and subsequent modeling of meltwater discharge from glaciers. To evaluate the new system (WRF-Hydro/Glacier), WRF model simulations were downscaled to 1 km grid spacing to provide meteorological forcing data to the WRF-Hydro/Glacier system at 100 m grid spacing. Evaluation of the WRF downscaling showed that it compared well with in situ meteorological observations for most of the simulation period. The WRF-Hydro/Glacier system reproduced the glacier surface winter/summer and net mass balance, snow depth, surface albedo and glacier runoff well compared to observations. The WRF-Hydro/Glacier system is only activated over a priori designated glacier areas. This glacier area is initialized with observed glacier thickness and assumed to be pure ice (with corresponding ice density). This allows for melt of the glacier to continue after all accumulated snow has melted. Furthermore, the simulation of surface albedo over the glacier is more realistic as surface albedo is represented by snow where there is accumulated snow, and glacier ice when all accumulated snow is melted. The improved estimation of albedo has an appreciable impact on the discharge from the glacier during late summer. We have shown that the integrated snow pack system allows for improved glacier surface mass balance studies as well as hydrological studies.
format Text
author Eidhammer, Trude
Booth, Adam
Decker, Sven
Li, Lu
Barlage, Michael
Gochis, David
Rasmussen, Roy
Melvold, Kjetil
Nesje, Atle
Sobolowski, Stefan
spellingShingle Eidhammer, Trude
Booth, Adam
Decker, Sven
Li, Lu
Barlage, Michael
Gochis, David
Rasmussen, Roy
Melvold, Kjetil
Nesje, Atle
Sobolowski, Stefan
Mass balance and hydrological modeling of the Hardangerjøkulen ice cap in south-central Norway
author_facet Eidhammer, Trude
Booth, Adam
Decker, Sven
Li, Lu
Barlage, Michael
Gochis, David
Rasmussen, Roy
Melvold, Kjetil
Nesje, Atle
Sobolowski, Stefan
author_sort Eidhammer, Trude
title Mass balance and hydrological modeling of the Hardangerjøkulen ice cap in south-central Norway
title_short Mass balance and hydrological modeling of the Hardangerjøkulen ice cap in south-central Norway
title_full Mass balance and hydrological modeling of the Hardangerjøkulen ice cap in south-central Norway
title_fullStr Mass balance and hydrological modeling of the Hardangerjøkulen ice cap in south-central Norway
title_full_unstemmed Mass balance and hydrological modeling of the Hardangerjøkulen ice cap in south-central Norway
title_sort mass balance and hydrological modeling of the hardangerjøkulen ice cap in south-central norway
publishDate 2020
url https://doi.org/10.5194/hess-2020-119
https://www.hydrol-earth-syst-sci-discuss.net/hess-2020-119/
geographic Norway
geographic_facet Norway
genre glacier
Ice cap
genre_facet glacier
Ice cap
op_source eISSN: 1607-7938
op_relation doi:10.5194/hess-2020-119
https://www.hydrol-earth-syst-sci-discuss.net/hess-2020-119/
op_doi https://doi.org/10.5194/hess-2020-119
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