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    Modified Channel-Routing Scheme for SWAT Model

    Source: Journal of Hydrologic Engineering:;2018:;Volume ( 023 ):;issue: 006
    Author:
    Pati Ashutosh;Sen Sumit;Perumal Muthiah
    DOI: 10.1061/(ASCE)HE.1943-5584.0001657
    Publisher: American Society of Civil Engineers
    Abstract: Because of its relatively easy quantification in comparison with the variables of other hydrological components, streamflow is an important and primary component for modeling in a watershed study. This study attempts to enhance one of the channel routing tools, the Muskingum routing method (MRM) used in the soil and water assessment tool (SWAT) model. This study advocates its replacement by a well-tested alternative physically based model known as the variable parameter McCarthy-Muskingum (VPMM), capable of varying the routing parameters at every routing interval, and thereby accounting the nonlinear characteristics of flood wave method movement in steep, intermediate, and small slope channels and rivers. However, the routing capability of the VPMM model is subject to the limitation of the inflow hydrograph being characterized by the criterion (1/So)∂y/∂x<.5, where ∂y/∂x denotes the slope of the longitudinal water surface gradient. A small watershed of approximately 986.9  km2 in the Vansadhara basin of the Odisha state in India with upstream and downstream sites at Gunupur and Kashinagar, respectively, is studied to demonstrate the routing capability of the VPMM scheme in comparison with the MRM, and variable storage routing method (VSRM) routing schemes used in the SWAT model. The routing simulations carried out using these three schemes are evaluated using measures like the Nash-Sutcliffe efficiency (NSE), coefficient of determination (R2), and mean absolute percent error (MAPE). The NSE estimates for VPMM, MRM, and VSRM routing schemes for the calibration and validation period were estimated to be .89, .92 and .91, and .72, .71, and .63, respectively; similarly, the R2 estimates for VPMM, MRM, and VSRM routing schemes for the calibration and validation period were estimated to be .89, .93 and .92, and .71, .7, and .63, respectively. As the performance of the VPMM model is at par with the the MRM routing module of the SWAT model and has a sound physical basis than the MRM routing scheme, it can be recommended that the VPMM routing scheme can be incorporated in the SWAT model for enhancing its routing capability. The added advantage of the VPMM scheme is that it also estimates the stage hydrograph corresponding to the routed discharge hydrograph and thereby increasing the utility of the SWAT model for sediment transport, in-stream nutrient, and operational purposes.
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      Modified Channel-Routing Scheme for SWAT Model

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    contributor authorPati Ashutosh;Sen Sumit;Perumal Muthiah
    date accessioned2019-02-26T07:59:56Z
    date available2019-02-26T07:59:56Z
    date issued2018
    identifier other%28ASCE%29HE.1943-5584.0001657.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4250771
    description abstractBecause of its relatively easy quantification in comparison with the variables of other hydrological components, streamflow is an important and primary component for modeling in a watershed study. This study attempts to enhance one of the channel routing tools, the Muskingum routing method (MRM) used in the soil and water assessment tool (SWAT) model. This study advocates its replacement by a well-tested alternative physically based model known as the variable parameter McCarthy-Muskingum (VPMM), capable of varying the routing parameters at every routing interval, and thereby accounting the nonlinear characteristics of flood wave method movement in steep, intermediate, and small slope channels and rivers. However, the routing capability of the VPMM model is subject to the limitation of the inflow hydrograph being characterized by the criterion (1/So)∂y/∂x<.5, where ∂y/∂x denotes the slope of the longitudinal water surface gradient. A small watershed of approximately 986.9  km2 in the Vansadhara basin of the Odisha state in India with upstream and downstream sites at Gunupur and Kashinagar, respectively, is studied to demonstrate the routing capability of the VPMM scheme in comparison with the MRM, and variable storage routing method (VSRM) routing schemes used in the SWAT model. The routing simulations carried out using these three schemes are evaluated using measures like the Nash-Sutcliffe efficiency (NSE), coefficient of determination (R2), and mean absolute percent error (MAPE). The NSE estimates for VPMM, MRM, and VSRM routing schemes for the calibration and validation period were estimated to be .89, .92 and .91, and .72, .71, and .63, respectively; similarly, the R2 estimates for VPMM, MRM, and VSRM routing schemes for the calibration and validation period were estimated to be .89, .93 and .92, and .71, .7, and .63, respectively. As the performance of the VPMM model is at par with the the MRM routing module of the SWAT model and has a sound physical basis than the MRM routing scheme, it can be recommended that the VPMM routing scheme can be incorporated in the SWAT model for enhancing its routing capability. The added advantage of the VPMM scheme is that it also estimates the stage hydrograph corresponding to the routed discharge hydrograph and thereby increasing the utility of the SWAT model for sediment transport, in-stream nutrient, and operational purposes.
    publisherAmerican Society of Civil Engineers
    titleModified Channel-Routing Scheme for SWAT Model
    typeJournal Paper
    journal volume23
    journal issue6
    journal titleJournal of Hydrologic Engineering
    identifier doi10.1061/(ASCE)HE.1943-5584.0001657
    page4018019
    treeJournal of Hydrologic Engineering:;2018:;Volume ( 023 ):;issue: 006
    contenttypeFulltext
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