RECONSTRUCTION OF FLOW REGIMES OF BORKENA CATCHMENT FOR IRRIGATION DEVELOPMENT USING RAINFALL-RUNOFF MODELINGRAINFALL - RUNOFF MODELING

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dc.contributor.author MEZGEBU MEWDED
dc.date.accessioned 2017-07-03T06:25:43Z
dc.date.available 2017-07-03T06:25:43Z
dc.date.issued 2008-09
dc.identifier.uri http://hdl.handle.net/123456789/528
dc.description.abstract The main objective of the research is to reconstruct flow regimes of Borkena catchment in ungauged locations for irrigation development using rainfall-runoff were used to test the hydrological response of the Borkena catchment. based Linearly Varying Gain Factor Model, and the Artificial Neural Network Model, along with the conceptual Soil Moisture Accounting and Routing Model, modeling. Four black-box-type rainfall-runoff models, namely, the Simple Linear Model, the seasonally based Linear Perturbation Model, the wetness-index­The performance of these hydrological models for the study area was tested and the best candidate model for the catchment response prediction was selected. Artificial neural network model was selected as a robust rainfall-runoff model to obtain the estimated flow of the gauged station which is the basis to transfer flow data to ungauged sites on the catchment. The R2 during calibration and verification was 97.57% and 91.30% respectivelyOn the basis of the selected model 15 days 75% dependable flow derived from the flow duration was used as the basis of estimating dependable low flows at ungauged locations of the catchment using area ratio method of transferring flows. en_US
dc.language.iso en en_US
dc.publisher ARBAMINCH UNIVERSITY en_US
dc.title RECONSTRUCTION OF FLOW REGIMES OF BORKENA CATCHMENT FOR IRRIGATION DEVELOPMENT USING RAINFALL-RUNOFF MODELINGRAINFALL - RUNOFF MODELING en_US
dc.type Thesis en_US


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