Enhancing the Structure of the WRF-Hydro Hydrologic Model for Semiarid EnvironmentsSource: Journal of Hydrometeorology:;2019:;volume 020:;issue 004::page 691Author:Lahmers, Timothy M.
,
Gupta, Hoshin
,
Castro, Christopher L.
,
Gochis, David J.
,
Yates, David
,
Dugger, Aubrey
,
Goodrich, David
,
Hazenberg, Pieter
DOI: 10.1175/JHM-D-18-0064.1Publisher: American Meteorological Society
Abstract: AbstractIn August 2016, the National Weather Service Office of Water Prediction (NWS/OWP) of the National Oceanic and Atmospheric Administration (NOAA) implemented the operational National Water Model (NWM) to simulate and forecast streamflow, soil moisture, and other model states throughout the contiguous United States. Based on the architecture of the WRF-Hydro hydrologic model, the NWM does not currently resolve channel infiltration, an important component of the water balance of the semiarid western United States. Here, we demonstrate the benefit of implementing a conceptual channel infiltration function (from the KINEROS2 semidistributed hydrologic model) into the WRF-Hydro model architecture, configured as NWM v1.1. After calibration, the updated WRF-Hydro model exhibits reduced streamflow errors for the Walnut Gulch Experimental Watershed (WGEW) and the Babocomari River in southeast Arizona. Model calibration was performed using NLDAS-2 atmospheric forcing, available from the NOAA National Centers for Environmental Prediction (NCEP), paired with precipitation forcing from NLDAS-2, NCEP Stage IV, or local gauge precipitation. Including channel infiltration within WRF-Hydro results in a physically realistic hydrologic response in the WGEW, when the model is forced with high-resolution, gauge-based precipitation in lieu of a national product. The value of accounting for channel loss is also demonstrated in the Babocomari basin, where the drainage area is greater and the cumulative effect of channel infiltration is more important. Accounting for channel infiltration loss thus improves the streamflow behavior simulated by the calibrated model and reduces evapotranspiration bias when gauge precipitation is used as forcing. However, calibration also results in increased high soil moisture bias, which is likely due to underlying limitations of the NWM structure and calibration methodology.
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| contributor author | Lahmers, Timothy M. | |
| contributor author | Gupta, Hoshin | |
| contributor author | Castro, Christopher L. | |
| contributor author | Gochis, David J. | |
| contributor author | Yates, David | |
| contributor author | Dugger, Aubrey | |
| contributor author | Goodrich, David | |
| contributor author | Hazenberg, Pieter | |
| date accessioned | 2019-10-05T06:43:48Z | |
| date available | 2019-10-05T06:43:48Z | |
| date copyright | 3/12/2019 12:00:00 AM | |
| date issued | 2019 | |
| identifier other | JHM-D-18-0064.1.pdf | |
| identifier uri | http://yetl.yabesh.ir/yetl1/handle/yetl/4263241 | |
| description abstract | AbstractIn August 2016, the National Weather Service Office of Water Prediction (NWS/OWP) of the National Oceanic and Atmospheric Administration (NOAA) implemented the operational National Water Model (NWM) to simulate and forecast streamflow, soil moisture, and other model states throughout the contiguous United States. Based on the architecture of the WRF-Hydro hydrologic model, the NWM does not currently resolve channel infiltration, an important component of the water balance of the semiarid western United States. Here, we demonstrate the benefit of implementing a conceptual channel infiltration function (from the KINEROS2 semidistributed hydrologic model) into the WRF-Hydro model architecture, configured as NWM v1.1. After calibration, the updated WRF-Hydro model exhibits reduced streamflow errors for the Walnut Gulch Experimental Watershed (WGEW) and the Babocomari River in southeast Arizona. Model calibration was performed using NLDAS-2 atmospheric forcing, available from the NOAA National Centers for Environmental Prediction (NCEP), paired with precipitation forcing from NLDAS-2, NCEP Stage IV, or local gauge precipitation. Including channel infiltration within WRF-Hydro results in a physically realistic hydrologic response in the WGEW, when the model is forced with high-resolution, gauge-based precipitation in lieu of a national product. The value of accounting for channel loss is also demonstrated in the Babocomari basin, where the drainage area is greater and the cumulative effect of channel infiltration is more important. Accounting for channel infiltration loss thus improves the streamflow behavior simulated by the calibrated model and reduces evapotranspiration bias when gauge precipitation is used as forcing. However, calibration also results in increased high soil moisture bias, which is likely due to underlying limitations of the NWM structure and calibration methodology. | |
| publisher | American Meteorological Society | |
| title | Enhancing the Structure of the WRF-Hydro Hydrologic Model for Semiarid Environments | |
| type | Journal Paper | |
| journal volume | 20 | |
| journal issue | 4 | |
| journal title | Journal of Hydrometeorology | |
| identifier doi | 10.1175/JHM-D-18-0064.1 | |
| journal fristpage | 691 | |
| journal lastpage | 714 | |
| tree | Journal of Hydrometeorology:;2019:;volume 020:;issue 004 | |
| contenttype | Fulltext |