High-resolution fully coupled atmospheric–hydrological modeling: a cross-compartment regional water and energy cycle evaluation
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Published:2020-05-13
Issue:5
Volume:24
Page:2457-2481
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ISSN:1607-7938
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Container-title:Hydrology and Earth System Sciences
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language:en
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Short-container-title:Hydrol. Earth Syst. Sci.
Author:
Fersch BenjaminORCID, Senatore AlfonsoORCID, Adler BiancaORCID, Arnault Joël, Mauder MatthiasORCID, Schneider Katrin, Völksch Ingo, Kunstmann Harald
Abstract
Abstract. The land surface and the atmospheric boundary layer are closely intertwined with respect to the exchange of water, trace gases, and energy. Nonlinear feedback and scale-dependent mechanisms are obvious by observations and theories. Modeling instead is often narrowed to single compartments of the terrestrial system or bound to traditional viewpoints of definite scientific disciplines. Coupled terrestrial hydrometeorological modeling systems attempt to overcome these limitations to achieve a better integration of the processes relevant for regional climate studies and local-area weather prediction. This study examines the ability of the hydrologically enhanced version of the Weather Research and Forecasting model (WRF-Hydro) to reproduce the regional water cycle by means of a two-way coupled approach and assesses the impact of hydrological coupling with respect to a traditional regional atmospheric model setting. It includes the observation-based calibration of the hydrological model component (offline WRF-Hydro) and a comparison of the classic WRF and the fully coupled WRF-Hydro models both with identically calibrated parameter settings for the land surface model (Noah-Multiparametrization; Noah-MP). The simulations are evaluated based on extensive observations at the Terrestrial Environmental Observatories (TERENO) Pre-Alpine Observatory for the Ammer (600 km2) and Rott (55 km2) river catchments in southern Germany, covering a 5-month period (June–October 2016).
The sensitivity of seven land surface parameters is tested using the Latin-Hypercube–One-factor-At-a-Time (LH-OAT) method, and six sensitive parameters are subsequently optimized for six different subcatchments, using the model-independent Parameter Estimation and Uncertainty Analysis software (PEST).
The calibration of the offline WRF-Hydro gives Nash–Sutcliffe efficiencies between 0.56 and 0.64 and volumetric efficiencies between 0.46 and 0.81 for the six subcatchments. The comparison of the classic WRF and fully coupled WRF-Hydro models, both using the calibrated parameters from the offline model, shows only tiny alterations for radiation and precipitation but considerable changes for moisture and heat fluxes. By comparison with TERENO Pre-Alpine Observatory measurements, the fully coupled model slightly outperforms the classic WRF model with respect to evapotranspiration, sensible and ground heat flux, the near-surface mixing ratio, temperature, and boundary layer profiles of air temperature. The subcatchment-based water budgets show uniformly directed variations for evapotranspiration, infiltration excess and percolation, whereas soil moisture and precipitation change randomly.
Publisher
Copernicus GmbH
Subject
General Earth and Planetary Sciences,General Engineering,General Environmental Science
Reference108 articles.
1. Arnault, J., Knoche, R., Wei, J., and Kunstmann, H.: Evaporation tagging and
atmospheric water budget analysis with WRF: A regional precipitation
recycling study for West Africa, Water Resour. Res., 52, 1544–1567,
https://doi.org/10.1002/2015wr017704, 2016a. a 2. Arnault, J., Wagner, S., Rummler, T., Fersch, B., Bliefernicht, J., Andresen,
S., and Kunstmann, H.: Role of Runoff-Infiltration Partitioning and Resolved
Overland Flow on Land-Atmosphere Feedbacks: A Case Study with the WRF-Hydro
Coupled Modeling System for West Africa, J. Hydrometeorol., 17, 1489–1516,
https://doi.org/10.1175/JHM-D-15-0089.1, 2016b. a, b 3. Arnault, J., Rummler, T., Baur, F., Lerch, S., Wagner, S., Fersch, B., Zhang,
Z., Kerandi, N., Keil, C., and Kunstmann, H.: Precipitation Sensitivity to
the Uncertainty of Terrestrial Water Flow in WRF-Hydro: An Ensemble Analysis
for Central Europe, J. Hydrometeorol., 19, 1007–1025,
https://doi.org/10.1175/jhm-d-17-0042.1, 2018. a, b, c 4. Arnault, J., Wei, J., Rummler, T., Fersch, B., Zhang, Z., Jung, G., Wagner, S.,
and Kunstmann, H.: A joint soil-vegetation-atmospheric water tagging
procedure with WRF-Hydro: Implementation and application to the case of
precipitation partitioning in the upper Danube river basin, Water Resour.
Res., 55, 6217–6243, https://doi.org/10.1029/2019wr024780, 2019. a 5. ASTER: ASTER Orthorectified Digital Elevation Model (DEM) V003, https://doi.org/10.5067/ASTER/AST14DEM.003, last access: 11 May 2020.
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