A one-dimensional model intercomparison study of thermal regime of a shallow, turbid midlatitude lake

Results of a lake model intercomparison study conducted within the framework of Lake Model Intercomparison Project are presented. The investigated lake was Großer Kossenblatter See (Germany) as a representative of shallow, (2 m mean depth) turbid midlatitude lakes. Meteorological measurements, inclu...

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Main Authors: V. M. Stepanenko, A. Martynov, K. D. Jöhnk, Z. M. Subin, M. Perroud, X. Fang, F. Beyrich, D. Mironov, S. Goyette
Format: Article
Language:English
Published: Copernicus Publications 2013-08-01
Series:Geoscientific Model Development
Online Access:http://www.geosci-model-dev.net/6/1337/2013/gmd-6-1337-2013.pdf
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spelling doaj-c41801ec02d6445fbfa8e5280423d9872020-11-24T23:28:44ZengCopernicus PublicationsGeoscientific Model Development1991-959X1991-96032013-08-01641337135210.5194/gmd-6-1337-2013A one-dimensional model intercomparison study of thermal regime of a shallow, turbid midlatitude lakeV. M. StepanenkoA. MartynovK. D. JöhnkZ. M. SubinM. PerroudX. FangF. BeyrichD. MironovS. GoyetteResults of a lake model intercomparison study conducted within the framework of Lake Model Intercomparison Project are presented. The investigated lake was Großer Kossenblatter See (Germany) as a representative of shallow, (2 m mean depth) turbid midlatitude lakes. Meteorological measurements, including turbulent fluxes and water temperature, were carried out by the Lindenberg Meteorological Observatory of the German Meteorological Service (Deutscher Wetterdienst, DWD). Eight lake models of different complexity were run, forced by identical meteorological variables and model parameters unified as far as possible given different formulations of processes. All models generally captured diurnal and seasonal variability of lake surface temperature reasonably well. However, some models were incapable of realistically reproducing temperature stratification in summer. Total heat turbulent fluxes, computed by the surface flux schemes of the compared lake models, deviated on average from those measured by eddy covariance by 17–28 W m<sup>−2</sup>. There are a number of possible reasons for these deviations, and the conclusion is drawn that underestimation of real fluxes by the eddy covariance technique is the most probable reason. It is supported by the fact that the eddy covariance fluxes do not allow to close the heat balance of the water column, the residual for the whole period considered being &asymp;&#8211;28 W m<sup>−2</sup>. The effect of heat flux to bottom sediments can become significant for bottom temperatures. It also has profound influence on the surface temperatures in autumn due to convective mixing but not in summer when the lake stratification is stable. Thus, neglecting sediments shifts the summer–autumn temperature difference in models lacking explicit treatment of sediments considerably. As a practical recommendation based on results of the present study, we also infer that in order to realistically represent lakes in numerical weather prediction and climate models, it is advisable to use depth-resolving turbulence models (or equivalent) in favor of models with a completely mixed temperature profile.http://www.geosci-model-dev.net/6/1337/2013/gmd-6-1337-2013.pdf
collection DOAJ
language English
format Article
sources DOAJ
author V. M. Stepanenko
A. Martynov
K. D. Jöhnk
Z. M. Subin
M. Perroud
X. Fang
F. Beyrich
D. Mironov
S. Goyette
spellingShingle V. M. Stepanenko
A. Martynov
K. D. Jöhnk
Z. M. Subin
M. Perroud
X. Fang
F. Beyrich
D. Mironov
S. Goyette
A one-dimensional model intercomparison study of thermal regime of a shallow, turbid midlatitude lake
Geoscientific Model Development
author_facet V. M. Stepanenko
A. Martynov
K. D. Jöhnk
Z. M. Subin
M. Perroud
X. Fang
F. Beyrich
D. Mironov
S. Goyette
author_sort V. M. Stepanenko
title A one-dimensional model intercomparison study of thermal regime of a shallow, turbid midlatitude lake
title_short A one-dimensional model intercomparison study of thermal regime of a shallow, turbid midlatitude lake
title_full A one-dimensional model intercomparison study of thermal regime of a shallow, turbid midlatitude lake
title_fullStr A one-dimensional model intercomparison study of thermal regime of a shallow, turbid midlatitude lake
title_full_unstemmed A one-dimensional model intercomparison study of thermal regime of a shallow, turbid midlatitude lake
title_sort one-dimensional model intercomparison study of thermal regime of a shallow, turbid midlatitude lake
publisher Copernicus Publications
series Geoscientific Model Development
issn 1991-959X
1991-9603
publishDate 2013-08-01
description Results of a lake model intercomparison study conducted within the framework of Lake Model Intercomparison Project are presented. The investigated lake was Großer Kossenblatter See (Germany) as a representative of shallow, (2 m mean depth) turbid midlatitude lakes. Meteorological measurements, including turbulent fluxes and water temperature, were carried out by the Lindenberg Meteorological Observatory of the German Meteorological Service (Deutscher Wetterdienst, DWD). Eight lake models of different complexity were run, forced by identical meteorological variables and model parameters unified as far as possible given different formulations of processes. All models generally captured diurnal and seasonal variability of lake surface temperature reasonably well. However, some models were incapable of realistically reproducing temperature stratification in summer. Total heat turbulent fluxes, computed by the surface flux schemes of the compared lake models, deviated on average from those measured by eddy covariance by 17–28 W m<sup>−2</sup>. There are a number of possible reasons for these deviations, and the conclusion is drawn that underestimation of real fluxes by the eddy covariance technique is the most probable reason. It is supported by the fact that the eddy covariance fluxes do not allow to close the heat balance of the water column, the residual for the whole period considered being &asymp;&#8211;28 W m<sup>−2</sup>. The effect of heat flux to bottom sediments can become significant for bottom temperatures. It also has profound influence on the surface temperatures in autumn due to convective mixing but not in summer when the lake stratification is stable. Thus, neglecting sediments shifts the summer–autumn temperature difference in models lacking explicit treatment of sediments considerably. As a practical recommendation based on results of the present study, we also infer that in order to realistically represent lakes in numerical weather prediction and climate models, it is advisable to use depth-resolving turbulence models (or equivalent) in favor of models with a completely mixed temperature profile.
url http://www.geosci-model-dev.net/6/1337/2013/gmd-6-1337-2013.pdf
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