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Titel Using ensemble data assimilation to forecast hydrological flumes
VerfasserIn I. Amour, Z. Mussa, A. Bibov, T. Kauranne
Medientyp Artikel
Sprache Englisch
ISSN 1023-5809
Digitales Dokument URL
Erschienen In: Nonlinear Processes in Geophysics ; 20, no. 6 ; Nr. 20, no. 6 (2013-11-08), S.955-964
Datensatznummer 250086069
Publikation (Nr.) Volltext-Dokument vorhandencopernicus.org/npg-20-955-2013.pdf
 
Zusammenfassung
Data assimilation, commonly used in weather forecasting, means combining a mathematical forecast of a target dynamical system with simultaneous measurements from that system in an optimal fashion. We demonstrate the benefits obtainable from data assimilation with a dam break flume simulation in which a shallow-water equation model is complemented with wave meter measurements. Data assimilation is conducted with a Variational Ensemble Kalman Filter (VEnKF) algorithm. The resulting dynamical analysis of the flume displays turbulent behavior, features prominent hydraulic jumps and avoids many numerical artifacts present in a pure simulation.
 
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