Javascript must be enabled to continue!
Explicit Scheme for a Hydrological Channel Routing: Mathematical Model and Practical Application
View through CrossRef
The computation of hydrographs in large watersheds necessitates utilizing channel routing, which calculates the movement of hydrographs along channel branches. Routing methods rely on an implicit scheme to facilitate numerical resolution, which requires more computational time than the explicit scheme. This study presents an explicit scheme channel routing model that offers a versatile approach to open channel flow analysis. The model is based on mass conservation principles and Manning equations, and it can accommodate varying bed slopes, making it highly adaptable to diverse hydraulic scenarios. In addition, the proposed model considers backwater effects, which enhances its applicability in practical scenarios. The model was tested in a practical application on a rectangular channel with a width of 7 m, and the results showed that it can accurately predict outflow hydrographs and handle different flow conditions. Comparative analyses with existing models revealed that the proposed model’s performance in generating water flow oscillations was competitive. Moreover, sensitivity analyses were performed, which showed that the model is highly responsive to parameter variations, such as Manning’s coefficient, bed slope, and channel width. The comparison of peak flows and peak times between the proposed model and existing methods further emphasized the model’s reliability and efficiency in simulating channel routing processes. This research introduces a valuable addition to the field of hydrology by proposing a practical and effective channel routing model that integrates essential hydraulic principles and parameters. The results of the proposed model (lumped routing) are comparable with the solution provided by the Muskingum–Cunge method (distributed routing). It is of utmost importance to note that the proposed model applies to channel branches with bed slopes below 6°.
Title: Explicit Scheme for a Hydrological Channel Routing: Mathematical Model and Practical Application
Description:
The computation of hydrographs in large watersheds necessitates utilizing channel routing, which calculates the movement of hydrographs along channel branches.
Routing methods rely on an implicit scheme to facilitate numerical resolution, which requires more computational time than the explicit scheme.
This study presents an explicit scheme channel routing model that offers a versatile approach to open channel flow analysis.
The model is based on mass conservation principles and Manning equations, and it can accommodate varying bed slopes, making it highly adaptable to diverse hydraulic scenarios.
In addition, the proposed model considers backwater effects, which enhances its applicability in practical scenarios.
The model was tested in a practical application on a rectangular channel with a width of 7 m, and the results showed that it can accurately predict outflow hydrographs and handle different flow conditions.
Comparative analyses with existing models revealed that the proposed model’s performance in generating water flow oscillations was competitive.
Moreover, sensitivity analyses were performed, which showed that the model is highly responsive to parameter variations, such as Manning’s coefficient, bed slope, and channel width.
The comparison of peak flows and peak times between the proposed model and existing methods further emphasized the model’s reliability and efficiency in simulating channel routing processes.
This research introduces a valuable addition to the field of hydrology by proposing a practical and effective channel routing model that integrates essential hydraulic principles and parameters.
The results of the proposed model (lumped routing) are comparable with the solution provided by the Muskingum–Cunge method (distributed routing).
It is of utmost importance to note that the proposed model applies to channel branches with bed slopes below 6°.
Related Results
Analisa dan Perbandingan Kinerja Routing Protocol OSPF dan EIGRP dalam Simulasi GNS3
Analisa dan Perbandingan Kinerja Routing Protocol OSPF dan EIGRP dalam Simulasi GNS3
Router is the network equipment for route the packet from one network segment to another in a bigscale network. Router can route packet because there is a routing table in router c...
En skvatmølle i Ljørring
En skvatmølle i Ljørring
A Horizontal Mill at Ljørring, Jutland.Horizontal water-mills have been in use in Jutland since the beginning of the Christian era 2). But the one here described shows so close a c...
Routing Security in Wireless Sensor Networks
Routing Security in Wireless Sensor Networks
Since routing is a fundamental operation in all types of networks, ensuring routing security is a necessary requirement to guarantee the success of routing operation. Securing rout...
Performance and Improvement Analysis of the Underwater WSN Using a Diverse Routing Protocol Approach
Performance and Improvement Analysis of the Underwater WSN Using a Diverse Routing Protocol Approach
The planet Earth is the most water-rich place because oceans cover more than 75% of its land area. Because of the extraordinary activities that occur in the depths, we know very li...
Hydrological model adaptivity to inputs of varied quality 
Hydrological model adaptivity to inputs of varied quality 
<p>Hydrological models serve as useful tools to describe current conditions and to predict future conditions in a catchment. However, the errors from input data inclu...
Research progresses and trends of hydrological connectivity based on bibliometrics
Research progresses and trends of hydrological connectivity based on bibliometrics
<p>Water is the main factor restricting and maintaining biological activities, and hydrological connectivity is closely related to many ecological processes. As a pro...
Joint Channel and Interference Aware Cooperative Routing for Cognitive Radio Network
Joint Channel and Interference Aware Cooperative Routing for Cognitive Radio Network
Cognitive Radio based network technology provides a promising solution for various types of real-time wireless communication by offering better spectrum utilization and resource al...
Assessment of Discharge and Sediment Flows in a River Through a Combined Hydraulic and Hydrologic Routing Technique
Assessment of Discharge and Sediment Flows in a River Through a Combined Hydraulic and Hydrologic Routing Technique
Abstract
An advancement on flood routing techniques is important for a good perdiction and forecast of the flow discharge in a river basins. Hydraulic and hydrologic routi...

