Using HYDRUS-2D model to simulate the water flow and nitrogen transport in a paddy field with traditional flooded irrigation

被引:5
|
作者
Sun, Xiaoying [1 ,2 ]
Tong, Juxiu [1 ,2 ]
Liu, Cong [1 ,2 ]
Ma, Yanbao [1 ,2 ]
机构
[1] China Univ Geosci, Sch Water Resources & Environm, Beijing 100083, Peoples R China
[2] China Univ Geosci, MOE Key Lab Groundwater Circulat & Environm Evolu, Beijing 100083, Peoples R China
基金
中国国家自然科学基金;
关键词
HYDRUS-2D; Nitrogen transport; Traditional flooded irrigation; Paddy fields; Ponding water; Different depths below soil surface; SOLUBLE CHEMICAL-TRANSFER; RICE FIELDS; SOIL-WATER; LOSSES; RUNOFF; RAINFALL; BALANCE; POLLUTION; MOVEMENT; DISTRICT;
D O I
10.1007/s11356-021-18457-4
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
In recent years, agricultural non-point source pollution (ANPSP) has become increasingly prominent, and nitrogen plays an important role in ANPSP. Therefore, we carried out traditional flooded irrigation (TFI) experiments in the paddy field, and applied HYDRUS-2D model to simulate the nitrogen transport in this study. Three observation points A1, A2, and A3 were arranged on the diagonal of the paddy field. We observed ponding water depth on soil surface and nitrogen concentrations in ponding water and soil water at 0.1 m, 0.2 m, and 0.3 m below soil surface. HYDRUS-2D model was proved to be effective in simulating the ponding water depth with root mean squared error (RMSE) = 0.717 cm and Nash-Sutcliffe coefficient (NSE) = 0.805 for the simulated and measured ponding water depth. The simulated and measured NH4+-N concentrations at different depths below soil surface at point A1 basically had the same trend, and the simulated NH4+-N concentrations in ponding water had better agreement with the measured data with RMSE = 1.323 mg/L, and NSE = 0.958. The measured NH4+-N concentrations at depths of 0.1 m, 0.2 m, and 0.3 m below soil surface at point A2 were larger than the simulated values, but they had the same trend on the whole. The simulated NH4+-N concentrations at different depths below soils' surface at point A3 did not fit well with the measured values. The overall trend of the simulated and measured NO3--N concentrations in ponding water on soil surface at point A1 was consistent, but the peak values of the simulated NO3--N concentrations were larger than the measured ones. The simulated and measured NO3--N concentrations at different depths below soil surface at points A2 and A3 did not agree well although they had the same trend, which became worse with the increase of soil depth. This indicated that the HYDRUS-2D model was effective in simulating water flow and nitrogen transport in TFI paddy fields. Sensitivity analysis suggested different simulated nitrogen concentrations in different water depths at different time were sensitive to different model parameters.
引用
收藏
页码:32894 / 32912
页数:19
相关论文
共 50 条
  • [21] Simulation and evaluation of soil water and salt transport under controlled subsurface drainage using HYDRUS-2D model
    Dou, Xu
    Shi, Haibin
    Li, Ruiping
    Miao, Qingfeng
    Yan, Jianwen
    Tian, Feng
    Wang, Bo
    AGRICULTURAL WATER MANAGEMENT, 2022, 273
  • [22] Modelling water and chemical transport in large undisturbed soil cores using HYDRUS-2D
    Phillips, IR
    AUSTRALIAN JOURNAL OF SOIL RESEARCH, 2006, 44 (01): : 27 - 34
  • [23] Modelling and optimization of urea super granule (USG) placement depth in paddy cultivation under check basin irrigation using HYDRUS-2D model
    Swain, Sidhartha Sekhar
    Chobhe, Kapil Atmaram
    Rajput, Jitendra
    Bandyopadhyay, Kalikinkar
    Sahoo, Pramod Kumar
    Parray, Roaf Ahmad
    Kushwaha, Hari Lal
    Lande, Satish Devram
    Khura, Tapan Kumar
    Malkani, Pankaj
    SOIL & TILLAGE RESEARCH, 2024, 241
  • [24] HYDRUS-2D simulations of water movement in a drip irrigation system under soilless substrate
    Geng, Lei
    Li, Li
    Li, Wei
    Yang, Chengfei
    Meng, Fanjia
    INTERNATIONAL JOURNAL OF AGRICULTURAL AND BIOLOGICAL ENGINEERING, 2022, 15 (03) : 210 - 216
  • [25] Comparison of APRI and Hydrus-2D models to simulate soil water dynamics in a vineyard under alternate partial root zone drip irrigation
    Qingyun Zhou
    Shaozhong Kang
    Lu Zhang
    Fusheng Li
    Plant and Soil, 2007, 291 : 211 - 223
  • [26] Using HYDRUS-2D simulation model to evaluate wetted soil volume in subsurface drip irrigation systems
    Provenzano, Giuseppe
    JOURNAL OF IRRIGATION AND DRAINAGE ENGINEERING, 2007, 133 (04) : 342 - 349
  • [27] Comparison of APRI and Hydrus-2D models to simulate soil water dynamics in a vineyard under alternate partial root zone drip irrigation
    Zhou, Qingyun
    Kang, Shaozhong
    Zhang, Lu
    Li, Fusheng
    PLANT AND SOIL, 2007, 291 (1-2) : 211 - 223
  • [28] Simulating water and salt transport in subsurface pipe drainage systems with HYDRUS-2D
    Liu, Yi
    Ao, Chang
    Zeng, Wenzhi
    Srivastava, Amit Kumar
    Gaiser, Thomas
    Wu, Jingwei
    Huang, Jiesheng
    JOURNAL OF HYDROLOGY, 2021, 592 (592)
  • [29] Modeling of Nitrate Leaching from a Potato Field using HYDRUS-2D
    Shekofteh, Hosein
    Afyuni, Majid
    Hajabbasi, Mohammad Ali
    Iversen, Bo V.
    Nezamabadi-Pour, Hosein
    Abassi, Fariborz
    Sheikholeslam, Farid
    Shirani, Hossein
    COMMUNICATIONS IN SOIL SCIENCE AND PLANT ANALYSIS, 2013, 44 (20) : 2917 - 2931
  • [30] Evaluating the Effects of Mulch and Irrigation Amount on Soil Water Distribution and Root Zone Water Balance Using HYDRUS-2D
    Han, Ming
    Zhao, Chengyi
    Feng, Gary
    Yan, Yingyu
    Sheng, Yu
    WATER, 2015, 7 (06) : 2622 - 2640