Internal Model Variability of the Regional Coupled System Model GCOAST-AHOI

Simulations of a Regional Climate Model (RCM) driven by identical lateral boundary conditions but initialized at different times exhibit the phenomenon of so-called internal model variability (or in short, Internal Variability—IV), which is defined as the inter-member spread between members in an en...

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Published in:Atmosphere
Main Authors: Ho-Hagemann, H., Hagemann, S., Grayek, S., Petrik, R., Rockel, B., Staneva, J., Feser, F., Schrum, C.
Format: Article in Journal/Newspaper
Language:English
Published: MDPI Publishing 2020
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Online Access:https://publications.hereon.de/id/38320
https://publications.hzg.de/id/38320
https://doi.org/10.3390/atmos11030227
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spelling fthzgzmk:oai:publications.hereon.de:38320 2023-06-11T04:16:37+02:00 Internal Model Variability of the Regional Coupled System Model GCOAST-AHOI Ho-Hagemann, H. Hagemann, S. Grayek, S. Petrik, R. Rockel, B. Staneva, J. Feser, F. Schrum, C. 2020 https://publications.hereon.de/id/38320 https://publications.hzg.de/id/38320 https://doi.org/10.3390/atmos11030227 en eng MDPI Publishing https://dx.doi.org/10.3390/atmos11030227 urn:issn:2073-4433 https://publications.hereon.de/id/38320 https://publications.hzg.de/id/38320 https://doi.org/10.3390/atmos11030227 info:eu-repo/semantics/openAccess open_access oa_gold issn:2073-4433 Ho-Hagemann, H.; Hagemann, S.; Grayek, S.; Petrik, R.; Rockel, B.; Staneva, J.; Feser, F.; Schrum, C.: Internal Model Variability of the Regional Coupled System Model GCOAST-AHOI. In: Atmosphere. Vol. 11 (2020) 3, 227. (DOI: /10.3390/atmos11030227) info:eu-repo/semantics/article Zeitschrift Artikel 2020 fthzgzmk https://doi.org/10.3390/atmos11030227 2023-05-28T23:24:56Z Simulations of a Regional Climate Model (RCM) driven by identical lateral boundary conditions but initialized at different times exhibit the phenomenon of so-called internal model variability (or in short, Internal Variability—IV), which is defined as the inter-member spread between members in an ensemble of simulations. Our study investigates the effects of air-sea coupling on IV of the regional atmospheric model COSMO-CLM (CCLM) of the new regional coupled system model GCOAST-AHOI (Geesthacht Coupled cOAstal model SysTem: Atmosphere, Hydrology, Ocean and Sea Ice). We specifically address physical processes parameterized in CCLM, which may cause a large IV during an extreme event, and where this IV is affected by the air-sea coupling. Two six-member ensemble simulations were conducted with GCOAST-AHOI and the stand-alone CCLM (CCLM_ctr) for a period of 1 September–31 December 2013 over Europe. IV is expressed by spreads within the two sets of ensembles. Analyses focus on specific events during this period, especially on the storm Christian occurring from 27 to 29 October 2013 in northern Europe. Results show that simulations of CCLM_ctr vary largely amongst ensemble members during the storm. By analyzing two members of CCLM_ctr with opposite behaviors, we found that the large uncertainty in CCLM_ctr is caused by a combination of two factors (1) uncertainty in parameterization of cloud-radiation interaction in the atmospheric model. and (2) lack of an active two-way air-sea interaction. When CCLM is two-way coupled with the ocean model, the ensemble means of GCOAST-AHOI and CCLM_ctr are relatively similar, but the spread is reduced remarkably in GCOAST-AHOI, not only over the ocean where the coupling is done but also over land due to the land-sea interactions. Article in Journal/Newspaper Sea ice Hereon Publications (Helmholtz-Zentrum) Atmosphere 11 3 227
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collection Hereon Publications (Helmholtz-Zentrum)
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language English
description Simulations of a Regional Climate Model (RCM) driven by identical lateral boundary conditions but initialized at different times exhibit the phenomenon of so-called internal model variability (or in short, Internal Variability—IV), which is defined as the inter-member spread between members in an ensemble of simulations. Our study investigates the effects of air-sea coupling on IV of the regional atmospheric model COSMO-CLM (CCLM) of the new regional coupled system model GCOAST-AHOI (Geesthacht Coupled cOAstal model SysTem: Atmosphere, Hydrology, Ocean and Sea Ice). We specifically address physical processes parameterized in CCLM, which may cause a large IV during an extreme event, and where this IV is affected by the air-sea coupling. Two six-member ensemble simulations were conducted with GCOAST-AHOI and the stand-alone CCLM (CCLM_ctr) for a period of 1 September–31 December 2013 over Europe. IV is expressed by spreads within the two sets of ensembles. Analyses focus on specific events during this period, especially on the storm Christian occurring from 27 to 29 October 2013 in northern Europe. Results show that simulations of CCLM_ctr vary largely amongst ensemble members during the storm. By analyzing two members of CCLM_ctr with opposite behaviors, we found that the large uncertainty in CCLM_ctr is caused by a combination of two factors (1) uncertainty in parameterization of cloud-radiation interaction in the atmospheric model. and (2) lack of an active two-way air-sea interaction. When CCLM is two-way coupled with the ocean model, the ensemble means of GCOAST-AHOI and CCLM_ctr are relatively similar, but the spread is reduced remarkably in GCOAST-AHOI, not only over the ocean where the coupling is done but also over land due to the land-sea interactions.
format Article in Journal/Newspaper
author Ho-Hagemann, H.
Hagemann, S.
Grayek, S.
Petrik, R.
Rockel, B.
Staneva, J.
Feser, F.
Schrum, C.
spellingShingle Ho-Hagemann, H.
Hagemann, S.
Grayek, S.
Petrik, R.
Rockel, B.
Staneva, J.
Feser, F.
Schrum, C.
Internal Model Variability of the Regional Coupled System Model GCOAST-AHOI
author_facet Ho-Hagemann, H.
Hagemann, S.
Grayek, S.
Petrik, R.
Rockel, B.
Staneva, J.
Feser, F.
Schrum, C.
author_sort Ho-Hagemann, H.
title Internal Model Variability of the Regional Coupled System Model GCOAST-AHOI
title_short Internal Model Variability of the Regional Coupled System Model GCOAST-AHOI
title_full Internal Model Variability of the Regional Coupled System Model GCOAST-AHOI
title_fullStr Internal Model Variability of the Regional Coupled System Model GCOAST-AHOI
title_full_unstemmed Internal Model Variability of the Regional Coupled System Model GCOAST-AHOI
title_sort internal model variability of the regional coupled system model gcoast-ahoi
publisher MDPI Publishing
publishDate 2020
url https://publications.hereon.de/id/38320
https://publications.hzg.de/id/38320
https://doi.org/10.3390/atmos11030227
genre Sea ice
genre_facet Sea ice
op_source issn:2073-4433
Ho-Hagemann, H.; Hagemann, S.; Grayek, S.; Petrik, R.; Rockel, B.; Staneva, J.; Feser, F.; Schrum, C.: Internal Model Variability of the Regional Coupled System Model GCOAST-AHOI. In: Atmosphere. Vol. 11 (2020) 3, 227. (DOI: /10.3390/atmos11030227)
op_relation https://dx.doi.org/10.3390/atmos11030227
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https://publications.hereon.de/id/38320
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https://doi.org/10.3390/atmos11030227
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op_doi https://doi.org/10.3390/atmos11030227
container_title Atmosphere
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