Neural network modeling and geochemical water analyses to understand and forecast karst and non-karst part of flash floods (case study on the <i>Lez</i> river, Southern France)

Author:

Darras T.,Raynaud F.ORCID,Borrell Estupina V.,Kong-A-Siou L.,Van-Exter S.,Vayssade B.,Johannet A.,Pistre S.

Abstract

Abstract. Flash floods forecasting in the Mediterranean area is a major economic and societal issue. Specifically, considering karst basins, heterogeneous structure and nonlinear behaviour make the flash flood forecasting very difficult. In this context, this work proposes a methodology to estimate the contribution from karst and non-karst components using toolbox including neural networks and various hydrological methods. The chosen case study is the flash flooding of the Lez river, known for his complex behaviour and huge stakes, at the gauge station of Lavallette, upstream of Montpellier (400 000 inhabitants). After application of the proposed methodology, discharge at the station of Lavallette is spited between hydrographs of karst flood and surface runoff, for the two events of 2014. Generalizing the method to future events will allow designing forecasting models specifically for karst and surface flood increasing by this way the reliability of the forecasts.

Publisher

Copernicus GmbH

Subject

General Medicine

Reference13 articles.

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2. Bérard, P.: Alimentation en eau de la ville de Montpellier. Captage de la source du Lez étude des relations entre la source et son réservoir aquifère. Rapport no 2: Détermination des unités hydrogéologiques, BRGM Montpellier, 1983.

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4. Caetano Bicalho, C.: Hydrochemical characterization of transfers in karst aquifers by natural and anthropogenic tracers. Example of a Mediterranean karst system, the Lez karst aquifer (Southern France), PhD thesis, AgroParisTech, 2 December, available at: https://pastel.archives-ouvertes.fr/pastel-00569544/document 2010.

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