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Saturated area dynamics and streamflow generation from coupled surface-subsurface simulations and field observations

Journal articles  - Journal Article
Weill, S; Altissimo, M; Cassiani, G; Deiana, R; Marani, M; Putti, M
Published in: Advances in Water Resources
September 1, 2013

A distributed physically-based model describing coupled surface-subsurface flows is applied to an instrumented catchment to investigate the links between runoff generation processes and the dynamics of saturated areas. The spatial characterization of the system is obtained through geophysical measurements and in situ observations. The model is able to reproduce the dynamics of the system through the calibration of only few parameters with a clear physical interpretation, providing a solid basis for our numerical investigations. Such investigations demonstrate the important control exerted by surface topography on the time evolution of saturated area patterns, mainly mediated by topographic curvature, that dictates both the dominant streamflow generation process at the local scale and the connection-disconnection dynamics of saturated areas. The relation between hillslope water storage and streamflow, Q= f(V), is shown to be highly hysteretical and dependent on the mean saturation of the catchment: higher degrees of saturation tend to yield one-to-one relationships between streamflow and water storage. On the contrary, streamflow-water storage relations are importantly affected by the specific configuration of saturated areas connected to the outlet when the system is far from complete saturation. This observation contradicts common assumptions of a one-to-one relationship Q= f(V) often used to justify widely observed power-law Q vs. d. Q/d. t recession curves. Furthermore, even when Q= f(V) becomes unique at high degrees of saturation, no power-law form emerged in our runs, speculatively because of the small size of the catchment formed by a single incision and the corresponding hillslope. © 2013 Elsevier Ltd.

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Published In

Advances in Water Resources

DOI

ISSN

0309-1708

Publication Date

September 1, 2013

Volume

59

Start / End Page

196 / 208

Related Subject Headings

  • Environmental Engineering
  • 4901 Applied mathematics
  • 4005 Civil engineering
  • 3707 Hydrology
 

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Weill, S., Altissimo, M., Cassiani, G., Deiana, R., Marani, M., & Putti, M. (2013). Saturated area dynamics and streamflow generation from coupled surface-subsurface simulations and field observations. Advances in Water Resources, 59, 196–208. https://doi.org/10.1016/j.advwatres.2013.06.007
Weill, S., M. Altissimo, G. Cassiani, R. Deiana, M. Marani, and M. Putti. “Saturated area dynamics and streamflow generation from coupled surface-subsurface simulations and field observations.” Advances in Water Resources 59 (September 1, 2013): 196–208. https://doi.org/10.1016/j.advwatres.2013.06.007.
Weill S, Altissimo M, Cassiani G, Deiana R, Marani M, Putti M. Saturated area dynamics and streamflow generation from coupled surface-subsurface simulations and field observations. Advances in Water Resources. 2013 Sep 1;59:196–208.
Weill, S., et al. “Saturated area dynamics and streamflow generation from coupled surface-subsurface simulations and field observations.” Advances in Water Resources, vol. 59, Sept. 2013, pp. 196–208. Scopus, doi:10.1016/j.advwatres.2013.06.007.
Weill S, Altissimo M, Cassiani G, Deiana R, Marani M, Putti M. Saturated area dynamics and streamflow generation from coupled surface-subsurface simulations and field observations. Advances in Water Resources. 2013 Sep 1;59:196–208.
Journal cover image

Published In

Advances in Water Resources

DOI

ISSN

0309-1708

Publication Date

September 1, 2013

Volume

59

Start / End Page

196 / 208

Related Subject Headings

  • Environmental Engineering
  • 4901 Applied mathematics
  • 4005 Civil engineering
  • 3707 Hydrology