analytical flow duration curves for summer streamflow in switzerland
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2018
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Abstract
This paper proposes a systematic assessment of the performance
of an analytical modeling framework for streamflow probability distributions
for a set of 25 Swiss catchments. These catchments show a wide range of
hydroclimatic regimes, including namely snow-influenced streamflows. The
model parameters are calculated from a spatially averaged gridded daily
precipitation data set and from observed daily discharge time series, both in
a forward estimation mode (direct parameter calculation from observed data)
and in an inverse estimation mode (maximum likelihood estimation). The
performance of the linear and the nonlinear model versions is assessed in
terms of reproducing observed flow duration curves and their natural
variability. Overall, the nonlinear model version outperforms the linear
model for all regimes, but the linear model shows a notable performance
increase with catchment elevation. More importantly, the obtained results
demonstrate that the analytical model performs well for summer discharge for
all analyzed streamflow regimes, ranging from rainfall-driven regimes with
summer low flow to snow and glacier regimes with summer high flow. These
results suggest that the model's encoding of discharge-generating events
based on stochastic soil moisture dynamics is more flexible than previously
thought. As shown in this paper, the presence of snowmelt or ice melt is
accommodated by a relative increase in the discharge-generating frequency, a
key parameter of the model. Explicit quantification of this frequency
increase as a function of mean catchment meteorological conditions is left
for future research.
| Reference Key |
santos2018hydrologyanalytical
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|---|---|
| Authors | ;A. C. Santos;A. C. Santos;M. M. Portela;A. Rinaldo;A. Rinaldo;B. Schaefli;B. Schaefli |
| Journal | materials research bulletin |
| Year | 2018 |
| DOI |
10.5194/hess-22-2377-2018
|
| URL | |
| Keywords |
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