Javascript must be enabled to continue!
Two-dimensional hydrodynamic robust numerical model of soil erosion based on slopes and river basins
View through CrossRef
<div>
<div>
<div>
<p>Erosion is an important issue in soil science and is related to many environmental problems, such as soil erosion and sediment transport. Establishing a simulation model suitable for soil erosion prediction is of great significance not only to accurately predict the process of soil separation by runoff, but also improve the physical model of soil erosion. In this study, we develop a graphic processing unit (GPU)-based numerical model that combines two-dimensional (2D) hydrodynamic and Green-Ampt (G-A) infiltration modelling to simulate soil erosion. A Godunov-type scheme on a uniform and structured square grid is then generated to solve the relevant shallow water equations (SWEs). The highlight of this study is the use of GPU-based acceleration technology to enable numerical models to simulate slope and watershed erosion in an efficient and high-resolution manner. The results show that the hydrodynamic model performs well in simulating soil erosion process. Soil erosion is studied by conducting calculation verification at the slope and basin scales. The first case involves simulating soil erosion process of a slope surface under indoor artificial rainfall conditions from 0 to 1000 s, and there is a good agreement between the simulated values and the measured values for the runoff velocity. The second case is a river basin experiment (Coquet River Basin) that involves watershed erosion. Simulations of the erosion depth change and erosion cumulative amount of the basin during a period of 1&#8211;40 h show an elevation difference of erosion at 0.5&#8211;3.0 m, especially during the period of 20&#8211;30 h. Nine cross sections in the basin are selected for simulation and the results reveal that the depth of erosion change value ranges from &#8211;0.86 to &#8211;2.79 m and the depth of deposition change value varies from 0.38 to 1.02 m. The findings indicate that the developed GPU-based hydrogeomorphological model can reproduce soil erosion processes. These results are valuable for rainfall runoff and soil erosion predictions on rilled hillslopes and river basins.</p>
</div>
</div>
</div>
Title: Two-dimensional hydrodynamic robust numerical model of soil erosion based on slopes and river basins
Description:
<div>
<div>
<div>
<p>Erosion is an important issue in soil science and is related to many environmental problems, such as soil erosion and sediment transport.
Establishing a simulation model suitable for soil erosion prediction is of great significance not only to accurately predict the process of soil separation by runoff, but also improve the physical model of soil erosion.
In this study, we develop a graphic processing unit (GPU)-based numerical model that combines two-dimensional (2D) hydrodynamic and Green-Ampt (G-A) infiltration modelling to simulate soil erosion.
A Godunov-type scheme on a uniform and structured square grid is then generated to solve the relevant shallow water equations (SWEs).
The highlight of this study is the use of GPU-based acceleration technology to enable numerical models to simulate slope and watershed erosion in an efficient and high-resolution manner.
The results show that the hydrodynamic model performs well in simulating soil erosion process.
Soil erosion is studied by conducting calculation verification at the slope and basin scales.
The first case involves simulating soil erosion process of a slope surface under indoor artificial rainfall conditions from 0 to 1000 s, and there is a good agreement between the simulated values and the measured values for the runoff velocity.
The second case is a river basin experiment (Coquet River Basin) that involves watershed erosion.
Simulations of the erosion depth change and erosion cumulative amount of the basin during a period of 1&#8211;40 h show an elevation difference of erosion at 0.
5&#8211;3.
0 m, especially during the period of 20&#8211;30 h.
Nine cross sections in the basin are selected for simulation and the results reveal that the depth of erosion change value ranges from &#8211;0.
86 to &#8211;2.
79 m and the depth of deposition change value varies from 0.
38 to 1.
02 m.
The findings indicate that the developed GPU-based hydrogeomorphological model can reproduce soil erosion processes.
These results are valuable for rainfall runoff and soil erosion predictions on rilled hillslopes and river basins.
</p>
</div>
</div>
</div>.
Related Results
Extent of Cropland and Related Soil Erosion Risk in Rwanda
Extent of Cropland and Related Soil Erosion Risk in Rwanda
Land conversion to cropland is one of the major causes of severe soil erosion in Africa. This study assesses the current cropland extent and the related soil erosion risk in Rwanda...
Effects of rock outcrops on runoff and erosion from karst slopes under simulated rainfall
Effects of rock outcrops on runoff and erosion from karst slopes under simulated rainfall
AbstractRock outcrops play a crucial role in affecting hydrological and erosion processes on karst hillslopes. However, due to various difficulties in constructing runoff plots on ...
Risk Assessment and Prediction of Soil Water Erosion on the Middle Northern Slope of Tianshan Mountain
Risk Assessment and Prediction of Soil Water Erosion on the Middle Northern Slope of Tianshan Mountain
Soil erosion is a significant form of land degradation worldwide, leading to ecological degradation and a decline in agricultural productivity. The middle section of the northern s...
Effect of biochar application on soil hydrophysical properties and erosion potential
Effect of biochar application on soil hydrophysical properties and erosion potential
Biochar application is considered a beneficial strategy for improving soil ecosystem services and also takes place in carbon sequestration, decreasing greenhouse gas emissions, ren...
Soil Erosion Risk Assessment in The Niğde Using Corine Model
Soil Erosion Risk Assessment in The Niğde Using Corine Model
Soil erosion risk was calculated using the coordination of information on the environment (CORINE) model in this study. The aim of the study is to determine the soil erosion risk o...
Influence of Internal Erosion on Rainfall-Induced Instability of Layered Deposited-Soil Slopes
Influence of Internal Erosion on Rainfall-Induced Instability of Layered Deposited-Soil Slopes
Layered deposited-soil slopes are widely distributed in mountainous terrain. The rainfall-induced instability of layered deposited-soil slopes is not only controlled by the unsatur...
Flodfund - Bronzealderdeponeringer fra Gudenåen
Flodfund - Bronzealderdeponeringer fra Gudenåen
River findsBronze Age metalwork from the river GudenåBronze Age metalwork (primarily swords and other weapons) found in European rivers has aroused interest for many years, but lit...
Soil erosion estimation using Erosion Potential Method in the Vjosa River Basin, Albania
Soil erosion estimation using Erosion Potential Method in the Vjosa River Basin, Albania
<abstract>
<p>Soil erosion is a major environmental threat to soil sustainability and productivity with knock-on effects on agriculture, climate change, etc. Factors i...

