Finding behavioral parameterization for a 1-D water balance model by multi-criteria evaluation

Author:

Casper Markus C.1,Mohajerani Hadis1,Hassler Sibylle23,Herdel Tobias1,Blume Theresa2

Affiliation:

1. University of Trier , Faculty VI, Dep. of Physical Geography , Universitätsring 12, 54286 Trier , Germany .

2. GFZ German Research Centre for Geosciences , Section 5.4 Hydrology, Telegrafenberg, 14473 Potsdam , Germany .

3. Karlsruhe Institute of Technology (KIT), Institute for Water and River Basin Management, Chair of Hydrology , Kaiserstr. 12, 76131 Karlsruhe , Germany .

Abstract

Abstract Evapotranspiration is often estimated by numerical simulation. However, to produce accurate simulations, these models usually require on-site measurements for parameterization or calibration. We have to make sure that the model realistically reproduces both, the temporal patterns of soil moisture and evapotranspiration. In this study, we combine three sources of information: (i) measurements of sap velocities; (ii) soil moisture; and (iii) expert knowledge on local runoff generation and water balance to define constraints for a “behavioral” forest stand water balance model. Aiming for a behavioral model, we adjusted soil moisture at saturation, bulk resistance parameters and the parameters of the water retention curve (WRC). We found that the shape of the WRC influences substantially the behavior of the simulation model. Here, only one model realization could be referred to as “behavioral”. All other realizations failed for a least one of our evaluation criteria: Not only transpiration and soil moisture are simulated consistently with our observations, but also total water balance and runoff generation processes. The introduction of a multi-criteria evaluation scheme for the detection of unrealistic outputs made it possible to identify a well performing parameter set. Our findings indicate that measurement of different fluxes and state variables instead of just one and expert knowledge concerning runoff generation facilitate the parameterization of a hydrological model.

Publisher

Walter de Gruyter GmbH

Subject

Fluid Flow and Transfer Processes,Mechanical Engineering,Water Science and Technology

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