NHM–SMAP: spatially and temporally high-resolution nonhydrostatic atmospheric model coupled with detailed snow process model for Greenland Ice Sheet

To improve surface mass balance (SMB) estimates for the Greenland Ice Sheet (GrIS), we developed a 5 km resolution regional climate model combining the Japan Meteorological Agency Non-Hydrostatic atmospheric Model and the Snow Metamorphism and Albedo Process model (NHM–SMAP) with an output interval...

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Published in:The Cryosphere
Main Authors: Niwano, Masashi, Aoki, Teruo, Hashimoto, Akihiro, Matoba, Sumito, Yamaguchi, Satoru, Tanikawa, Tomonori, Fujita, Koji, Tsushima, Akane, Iizuka, Yoshinori, Shimada, Rigen, Hori, Masahiro
Format: Text
Language:English
Published: 2019
Subjects:
Online Access:https://doi.org/10.5194/tc-12-635-2018
https://tc.copernicus.org/articles/12/635/2018/
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spelling ftcopernicus:oai:publications.copernicus.org:tc59843 2023-05-15T16:28:21+02:00 NHM–SMAP: spatially and temporally high-resolution nonhydrostatic atmospheric model coupled with detailed snow process model for Greenland Ice Sheet Niwano, Masashi Aoki, Teruo Hashimoto, Akihiro Matoba, Sumito Yamaguchi, Satoru Tanikawa, Tomonori Fujita, Koji Tsushima, Akane Iizuka, Yoshinori Shimada, Rigen Hori, Masahiro 2019-01-18 application/pdf https://doi.org/10.5194/tc-12-635-2018 https://tc.copernicus.org/articles/12/635/2018/ eng eng doi:10.5194/tc-12-635-2018 https://tc.copernicus.org/articles/12/635/2018/ eISSN: 1994-0424 Text 2019 ftcopernicus https://doi.org/10.5194/tc-12-635-2018 2020-07-20T16:23:25Z To improve surface mass balance (SMB) estimates for the Greenland Ice Sheet (GrIS), we developed a 5 km resolution regional climate model combining the Japan Meteorological Agency Non-Hydrostatic atmospheric Model and the Snow Metamorphism and Albedo Process model (NHM–SMAP) with an output interval of 1 h, forced by the Japanese 55-year reanalysis (JRA-55). We used in situ data to evaluate NHM–SMAP in the GrIS during the 2011–2014 mass balance years. We investigated two options for the lower boundary conditions of the atmosphere: an offline configuration using snow, firn, and ice albedo, surface temperature data from JRA-55, and an online configuration using values from SMAP. The online configuration improved model performance in simulating 2 m air temperature, suggesting that the surface analysis provided by JRA-55 is inadequate for the GrIS and that SMAP results can better simulate physical conditions of snow/firn/ice. It also reproduced the measured features of the GrIS climate, diurnal variations, and even a strong mesoscale wind event. In particular, it successfully reproduced the temporal evolution of the GrIS surface melt area extent as well as the record melt event around 12 July 2012, at which time the simulated melt area extent reached 92.4 %. Sensitivity tests showed that the choice of calculation schemes for vertical water movement in snow and firn has an effect as great as 200 Gt year −1 in the GrIS-wide accumulated SMB estimates; a scheme based on the Richards equation provided the best performance. Text Greenland Ice Sheet Copernicus Publications: E-Journals Greenland The Cryosphere 12 2 635 655
institution Open Polar
collection Copernicus Publications: E-Journals
op_collection_id ftcopernicus
language English
description To improve surface mass balance (SMB) estimates for the Greenland Ice Sheet (GrIS), we developed a 5 km resolution regional climate model combining the Japan Meteorological Agency Non-Hydrostatic atmospheric Model and the Snow Metamorphism and Albedo Process model (NHM–SMAP) with an output interval of 1 h, forced by the Japanese 55-year reanalysis (JRA-55). We used in situ data to evaluate NHM–SMAP in the GrIS during the 2011–2014 mass balance years. We investigated two options for the lower boundary conditions of the atmosphere: an offline configuration using snow, firn, and ice albedo, surface temperature data from JRA-55, and an online configuration using values from SMAP. The online configuration improved model performance in simulating 2 m air temperature, suggesting that the surface analysis provided by JRA-55 is inadequate for the GrIS and that SMAP results can better simulate physical conditions of snow/firn/ice. It also reproduced the measured features of the GrIS climate, diurnal variations, and even a strong mesoscale wind event. In particular, it successfully reproduced the temporal evolution of the GrIS surface melt area extent as well as the record melt event around 12 July 2012, at which time the simulated melt area extent reached 92.4 %. Sensitivity tests showed that the choice of calculation schemes for vertical water movement in snow and firn has an effect as great as 200 Gt year −1 in the GrIS-wide accumulated SMB estimates; a scheme based on the Richards equation provided the best performance.
format Text
author Niwano, Masashi
Aoki, Teruo
Hashimoto, Akihiro
Matoba, Sumito
Yamaguchi, Satoru
Tanikawa, Tomonori
Fujita, Koji
Tsushima, Akane
Iizuka, Yoshinori
Shimada, Rigen
Hori, Masahiro
spellingShingle Niwano, Masashi
Aoki, Teruo
Hashimoto, Akihiro
Matoba, Sumito
Yamaguchi, Satoru
Tanikawa, Tomonori
Fujita, Koji
Tsushima, Akane
Iizuka, Yoshinori
Shimada, Rigen
Hori, Masahiro
NHM–SMAP: spatially and temporally high-resolution nonhydrostatic atmospheric model coupled with detailed snow process model for Greenland Ice Sheet
author_facet Niwano, Masashi
Aoki, Teruo
Hashimoto, Akihiro
Matoba, Sumito
Yamaguchi, Satoru
Tanikawa, Tomonori
Fujita, Koji
Tsushima, Akane
Iizuka, Yoshinori
Shimada, Rigen
Hori, Masahiro
author_sort Niwano, Masashi
title NHM–SMAP: spatially and temporally high-resolution nonhydrostatic atmospheric model coupled with detailed snow process model for Greenland Ice Sheet
title_short NHM–SMAP: spatially and temporally high-resolution nonhydrostatic atmospheric model coupled with detailed snow process model for Greenland Ice Sheet
title_full NHM–SMAP: spatially and temporally high-resolution nonhydrostatic atmospheric model coupled with detailed snow process model for Greenland Ice Sheet
title_fullStr NHM–SMAP: spatially and temporally high-resolution nonhydrostatic atmospheric model coupled with detailed snow process model for Greenland Ice Sheet
title_full_unstemmed NHM–SMAP: spatially and temporally high-resolution nonhydrostatic atmospheric model coupled with detailed snow process model for Greenland Ice Sheet
title_sort nhm–smap: spatially and temporally high-resolution nonhydrostatic atmospheric model coupled with detailed snow process model for greenland ice sheet
publishDate 2019
url https://doi.org/10.5194/tc-12-635-2018
https://tc.copernicus.org/articles/12/635/2018/
geographic Greenland
geographic_facet Greenland
genre Greenland
Ice Sheet
genre_facet Greenland
Ice Sheet
op_source eISSN: 1994-0424
op_relation doi:10.5194/tc-12-635-2018
https://tc.copernicus.org/articles/12/635/2018/
op_doi https://doi.org/10.5194/tc-12-635-2018
container_title The Cryosphere
container_volume 12
container_issue 2
container_start_page 635
op_container_end_page 655
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