Mathematical Model of Ammonium Nitrogen Transport to Runoff with Different Slope Gradients under Simulated Rainfall
The removal of nutrients by overland flow remains a major source of non-point pollution in agricultural land. In this study, a mathematical model of ammonium nitrogen transport from soil solution to overland flow was established. The model treated the mass transfer coefficient (k<sub>m</sub...
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doaj-469968429a9a47a2843813eea44766d12020-11-24T21:45:16ZengMDPI AGWater2073-44412019-04-0111467510.3390/w11040675w11040675Mathematical Model of Ammonium Nitrogen Transport to Runoff with Different Slope Gradients under Simulated RainfallWeimin Xing0Peiling Yang1Chang Ao2Shumei Ren3Yao Xu4College of Water Resources and Civil Engineering, China Agricultural University, Beijing 100083, ChinaCollege of Water Resources and Civil Engineering, China Agricultural University, Beijing 100083, ChinaState Key Laboratory of Water Resources and Hydropower Engineering Science, Wuhan University, Wuhan 430072, ChinaCollege of Water Resources and Civil Engineering, China Agricultural University, Beijing 100083, ChinaCollege of Water Resources and Civil Engineering, China Agricultural University, Beijing 100083, ChinaThe removal of nutrients by overland flow remains a major source of non-point pollution in agricultural land. In this study, a mathematical model of ammonium nitrogen transport from soil solution to overland flow was established. The model treated the mass transfer coefficient (k<sub>m</sub>) as a time-dependent parameter, which was not a constant value as in previous studies, and it was evaluated with a four-slope gradient and three rainfall intensities. The kinematic-wave equation for overland flow was solved by an approximately semi-analytical solution based on Philip’s infiltration model, while the diffusion-based mass conversation equation for overland nutrient transport was solved numerically. The results showed that the simulated runoff processes and ammonium nitrogen concentration transport to the overland flow agreed well with the experimental data. Further correlation analyses were made to determine the relationships between the slope gradient, rainfall intensity and the hydraulic and nutrient transport parameters. It turned out that these parameters could be described as a product of exponential functions of slope gradient and rainfall intensity. Finally, a diffusion-based model with a time-dependent mass transfer coefficient was established to predict the ammonium nitrogen transport processes at the experimental site under different slope gradients and rainfall intensities.https://www.mdpi.com/2073-4441/11/4/675mass transfer coefficientammonium nitrogen transportslope gradientrainfall intensity |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Weimin Xing Peiling Yang Chang Ao Shumei Ren Yao Xu |
spellingShingle |
Weimin Xing Peiling Yang Chang Ao Shumei Ren Yao Xu Mathematical Model of Ammonium Nitrogen Transport to Runoff with Different Slope Gradients under Simulated Rainfall Water mass transfer coefficient ammonium nitrogen transport slope gradient rainfall intensity |
author_facet |
Weimin Xing Peiling Yang Chang Ao Shumei Ren Yao Xu |
author_sort |
Weimin Xing |
title |
Mathematical Model of Ammonium Nitrogen Transport to Runoff with Different Slope Gradients under Simulated Rainfall |
title_short |
Mathematical Model of Ammonium Nitrogen Transport to Runoff with Different Slope Gradients under Simulated Rainfall |
title_full |
Mathematical Model of Ammonium Nitrogen Transport to Runoff with Different Slope Gradients under Simulated Rainfall |
title_fullStr |
Mathematical Model of Ammonium Nitrogen Transport to Runoff with Different Slope Gradients under Simulated Rainfall |
title_full_unstemmed |
Mathematical Model of Ammonium Nitrogen Transport to Runoff with Different Slope Gradients under Simulated Rainfall |
title_sort |
mathematical model of ammonium nitrogen transport to runoff with different slope gradients under simulated rainfall |
publisher |
MDPI AG |
series |
Water |
issn |
2073-4441 |
publishDate |
2019-04-01 |
description |
The removal of nutrients by overland flow remains a major source of non-point pollution in agricultural land. In this study, a mathematical model of ammonium nitrogen transport from soil solution to overland flow was established. The model treated the mass transfer coefficient (k<sub>m</sub>) as a time-dependent parameter, which was not a constant value as in previous studies, and it was evaluated with a four-slope gradient and three rainfall intensities. The kinematic-wave equation for overland flow was solved by an approximately semi-analytical solution based on Philip’s infiltration model, while the diffusion-based mass conversation equation for overland nutrient transport was solved numerically. The results showed that the simulated runoff processes and ammonium nitrogen concentration transport to the overland flow agreed well with the experimental data. Further correlation analyses were made to determine the relationships between the slope gradient, rainfall intensity and the hydraulic and nutrient transport parameters. It turned out that these parameters could be described as a product of exponential functions of slope gradient and rainfall intensity. Finally, a diffusion-based model with a time-dependent mass transfer coefficient was established to predict the ammonium nitrogen transport processes at the experimental site under different slope gradients and rainfall intensities. |
topic |
mass transfer coefficient ammonium nitrogen transport slope gradient rainfall intensity |
url |
https://www.mdpi.com/2073-4441/11/4/675 |
work_keys_str_mv |
AT weiminxing mathematicalmodelofammoniumnitrogentransporttorunoffwithdifferentslopegradientsundersimulatedrainfall AT peilingyang mathematicalmodelofammoniumnitrogentransporttorunoffwithdifferentslopegradientsundersimulatedrainfall AT changao mathematicalmodelofammoniumnitrogentransporttorunoffwithdifferentslopegradientsundersimulatedrainfall AT shumeiren mathematicalmodelofammoniumnitrogentransporttorunoffwithdifferentslopegradientsundersimulatedrainfall AT yaoxu mathematicalmodelofammoniumnitrogentransporttorunoffwithdifferentslopegradientsundersimulatedrainfall |
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1725905465055903744 |