Fully coupled atmosphere-hydrology simulations for the central Mediterranean: Impact of enhanced hydrological parameterization for short and long time scales

With the aim of developing a fully coupled atmosphere-hydrology model system, the Weather Research and Forecasting (WRF) model was enhanced by integrating a new set of hydrologic physics parameterizations accounting for lateral water flow occurring at the land surface. The WRF-Hydro modeling system was applied for a 3 year long simulation in the Crati River Basin (Southern Italy), where output from the fully coupled WRF/WRF-Hydro was compared to that provided by original WRF model. Prior to performing coupled land-atmosphere simulations, the stand-alone hydrological model ("uncoupled" WRF-Hydro) was calibrated through an automated procedure and validated using observed meteorological forcing and streamflow data, achieving a Nash-Sutcliffe Efficiency value of 0.80 for 1 year of simulation. Precipitation, runoff, soil moisture, deep drainage, and land surface heat fluxes were compared between WRF-only and WRF/WRF-Hydro simulations and validated additionally with ground-based observations, a FLUXNET site, and MODIS-derived LST. Since the main rain events in the study area are mostly dependent on the interactions between the atmosphere and the surrounding Mediterranean Sea, changes in precipitation between modeling experiments were modest. However, redistribution and reinfiltration of local infiltration excess produced higher soil moisture content, lower overall surface runoff, and higher drainage in the fully coupled model. Higher soil moisture values in WRF/WRF-Hydro slightly influenced precipitation and also increased latent heat fluxes. Overall, the fully coupled model tended to show better performance with respect to observed precipitation while allowing more water to circulate in the modeled regional water cycle thus, ultimately, modifying long-term hydrological processes at the land surface.

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Copyright 2015 American Geophysical Union.


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Author Senatore, Alfonso
Mendicino, Giuseppe
Gochis, David
Yu, Wei
Yates, David
Kunstmann, Harald
Publisher UCAR/NCAR - Library
Publication Date 2015-12-01T00:00:00
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Topic Category geoscientificInformation
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Metadata Date 2023-08-18T19:05:48.667681
Metadata Record Identifier edu.ucar.opensky::articles:18011
Metadata Language eng; USA
Suggested Citation Senatore, Alfonso, Mendicino, Giuseppe, Gochis, David, Yu, Wei, Yates, David, Kunstmann, Harald. (2015). Fully coupled atmosphere-hydrology simulations for the central Mediterranean: Impact of enhanced hydrological parameterization for short and long time scales. UCAR/NCAR - Library. http://n2t.net/ark:/85065/d73f4r5d. Accessed 23 June 2025.

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