Precipitation Sensitivity to the Uncertainty of Terrestrial Water Flow in WRF-Hydro: An Ensemble Analysis for Central Europe

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dc.contributor.author Arnault, Joel
dc.contributor.author Rummler, Thomas
dc.contributor.author Baur, Florian
dc.contributor.author Lerch, Sebastian
dc.contributor.author Wagner, Sven
dc.contributor.author Fersch, Benjamin
dc.contributor.author Zhang, Zhenyu
dc.contributor.author Kerandi, Noah M.
dc.contributor.author Keil, Christian
dc.contributor.author Kunstmann, Harald
dc.date.accessioned 2019-02-20T09:44:30Z
dc.date.available 2019-02-20T09:44:30Z
dc.date.issued 2018-06
dc.identifier.citation Journal of Hydrometeorology, Vol. 19 Issue 6, p1007-1025. 19p. June 2018. en_US
dc.identifier.issn 1525-755X
dc.identifier.uri http://web.a.ebscohost.com/ehost/pdfviewer/pdfviewer?vid=0&sid=5eca826f-65d9-4368-952a-c6262eaf8cc6%40sessionmgr4006
dc.identifier.uri http://repository.seku.ac.ke/handle/123456789/4370
dc.description DOI: 10.1175/JHM-D-17-0042.1 en_US
dc.description.abstract Precipitation is affected by soil moisture spatial variability. However, this variability is not well represented in atmospheric models that do not consider soil moisture transport as a three-dimensional process. This study investigates the sensitivity of precipitation to the uncertainty in the representation of terrestrial water flow. The tools used for this investigation are the Weather Research and Forecasting (WRF) Model and its hydrologically enhanced version, WRF-Hydro, applied over central Europe during April–October 2008. The model grid is convection permitting, with a horizontal spacing of 2.8 km. The WRF-Hydro subgrid employs a 280-m resolution to resolve lateral terrestrial water flow. A WRF/WRF-Hydro ensemble is constructed by modifying the parameter controlling the partitioning between surface runoff and infiltration and by varying the planetary boundary layer (PBL) scheme. This ensemble represents terrestrial water flow uncertainty originating from the consideration of resolved lateral flow, terrestrial water flow uncertainty in the vertical direction, and turbulence parameterization uncertainty. The uncertainty of terrestrial water flow noticeably increases the normalized ensemble spread of daily precipitation where topography is moderate, surface flux spatial variability is high, and the weather regime is dominated by local processes. The adjusted continuous ranked probability score shows that the PBL uncertainty improves the skill of an ensemble subset in reproducing daily precipitation from the E-OBS observational product by 16%–20%. In comparison to WRF, WRF-Hydro improves this skill by 0.4%–0.7%. The reproduction of observed daily discharge with Nash–Sutcliffe model efficiency coefficients generally above 0.3 demonstrates the potential of WRF-Hydro in hydrological science. en_US
dc.language.iso en en_US
dc.publisher American Meteorological Society en_US
dc.subject Coupled models en_US
dc.subject Hydrometeorology en_US
dc.subject Numerical weather prediction/forecasting en_US
dc.subject Soil moisture en_US
dc.subject Surface fluxes en_US
dc.title Precipitation Sensitivity to the Uncertainty of Terrestrial Water Flow in WRF-Hydro: An Ensemble Analysis for Central Europe en_US
dc.type Article en_US


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