Evaluation of CERES-Maize model for simulating maize phenology, grain yield, soil-water, evapotranspiration, and water productivity under different nitrogen levels and rainfed, limited, and full irrigation conditions

被引:0
|
作者
Irmak, Suat [1 ]
Amiri, Ebrahim [2 ]
Bazkiaee, P. Aalaee [3 ]
Araji, H. Ahmadzadeh [4 ]
机构
[1] Penn State Univ, Dept Agr & Biol Engn, University Pk, PA 16802 USA
[2] Islamic Azad Univ, Dept Water Engn, Lahijan Branch, Lahijan, Iran
[3] Gorgan Univ Agr Sci & Nat Resources, Dept Agron & Plant Prod, Gorgan, Iran
[4] Texas A&M AgriLife Res & Extens Ctr, 1509 Aggie Dr, Beaumont, TX 77713 USA
关键词
MANAGEMENT STRATEGIES; GROWTH; HYBRIDS;
D O I
10.1007/s00271-023-00909-z
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
The CERES-Maize model performance was investigated in simulating maize phenology, grain yield, soil-water, evapotranspiration, and water productivity under different irrigation and nitrogen (N) levels under a variable rate lateral (linear)-move sprinkler irrigation system. The irrigation levels were rainfed, full irrigation treatment (FIT) and 75% FIT. The N levels were 0, 84, 140, 196, and 252 kg/ha. The field experiment was conducted in the form of split plots with the irrigation levels as the main treatment and N levels as a sub-main treatment. The root mean squared error (RMSE), normalized RMSE (RMSEn), R2, T test, and model prediction error (Pe) statistics were used to evaluate the performance and accuracy of the model. Calibration of the model was done using the data of 2011 and 2012 and validation of the model was conducted for 2013 and 2014 by considering days after planting to flowering (DAPF), days after planting to maturity (DAPM), grain yield, crop evapotranspiration (ETc), water productivity (WP), and soil water content (SWC). The DAPF simulations based on the average values of Pe (0%), RMSE (2 days), and RMSEn (3%) and the DAPM simulation results based on the average values of Pe (2%), RMSE (4 days), and RMSEn (3%) showed that the model had an acceptable accuracy. In calibration years, RMSE, RMSEn, and R2, respectively, were 0.57 ton/ha, 5%, and 0.91; and in validation years, the same statistics, respectively, were 0.86 ton/ha, 10% and 0.94, indicating good performance of the model in estimating the grain yield. Good accuracy was observed in the estimation of ETc and WP. In most cases, the model accuracy was greatest for 75% FIT and FIT treatments than the stressed conditions in the rainfed treatment. The model accuracy can be enhanced by improving the model coefficients in response to low levels of water and N supply. R2 values obtained in rainfed (0.83), 75% FIT (0.81) and FIT (0.67) treatments in calibration years and R2 values in rainfed (0.75), 75% FIT (0.77) and FIT (0.86) treatments in validation years showed that the model predicted the SWC relatively well. The comparison of ETc values with respect to N levels showed that there was no considerable difference between levels of N applications impact(s) on the ETc magnitude in the rainfed treatment. Comparison of different levels of N in rainfed and FIT showed that the application of 252 kg/ha of N resulted in 2.37 kg/m3 and 2.56 kg/m3 of WP, respectively, which was significantly different from other levels of N fertilizer applications. In general, CERES-Maize model can be a useful tool for predicting plant phenology, grain yield, ETc, WP, and SWC for the conditions similar to those presented in this research. The CERES-Maize model can provide valuable data and information for sustainable maize production by examining the long-term grain yield and WP, which can be beneficial to growers, advisors, and stakeholders to enhance the maize production efficiency by accounting for irrigation and N management strategies.
引用
收藏
页码:551 / 573
页数:23
相关论文
共 42 条
  • [21] Soil amendments strategies to improve water-use efficiency and productivity of maize under different irrigation conditions
    Ali, Shahzad
    Jan, Amanullah
    Manzoor
    Sohail, Amir
    Khan, Ahmad
    Khan, Muhammad Ijaz
    Inamullah
    Zhang, Jiahua
    Daur, Ihsanullah
    AGRICULTURAL WATER MANAGEMENT, 2018, 210 : 88 - 95
  • [22] Maize response to coupled irrigation and nitrogen fertilization under center pivot, subsurface drip and surface (furrow) irrigation: Soil-water dynamics and crop evapotranspiration
    Mohammed, Ali T.
    Irmak, Suat
    AGRICULTURAL WATER MANAGEMENT, 2022, 267
  • [23] Growth Evaluation, Grain Yield and Productivity of Irrigation Water for Two Varieties of Barley Materials under Different Irrigation Levels
    Ahmed, Shatha Abdul Hassan
    INTERNATIONAL CONFERENCE ON EMERGING APPLICATIONS IN MATERIAL SCIENCE AND TECHNOLOGY (ICEAMST 2020), 2020, 2235
  • [24] Impact of deficit irrigation and planting density on grain yield and water productivity of maize grown under temperate continental climatic conditions
    Tolimir, Miodrag
    Gajic, Bosko
    Kresovic, Branka
    Zivotic, Ljubomir
    Gajic, Katarina
    Brankov, Milan
    Todorovic, Mladen
    AGRICULTURAL WATER MANAGEMENT, 2024, 302
  • [25] Evaluation of two evapotranspiration approaches simulated with the CSM-CERES-Maize model under different irrigation strategies and the impact on maize growth, development and soil moisture content for semi-arid conditions
    Anothai, J.
    Soler, C. M. T.
    Green, A.
    Trout, T. J.
    Hoogenboom, G.
    AGRICULTURAL AND FOREST METEOROLOGY, 2013, 176 : 64 - 76
  • [26] Simulating the effects of planting date and nitrogen fertilizer on yield and phenological stages of maize cultivar SC-604 under climatic conditions of south-western Iran using CERES-Maize model
    Delfieh, Mohammadreza
    Meskarbashi, Moosa
    Andarzian, Bahram
    Farhoudi, Roozbeh
    RESEARCH ON CROPS, 2011, 12 (02) : 326 - 335
  • [27] Modification and validation of maize simulation model (MSM) at different applied water and nitrogen levels under furrow irrigation
    Majnooni-Heris, Abolfazl
    Zand-Parsa, Shahrokh
    Sepaskhah, Ali Reza
    Kamgar-Haghighi, Ali Akbar
    Yasrebi, Jafar
    ARCHIVES OF AGRONOMY AND SOIL SCIENCE, 2011, 57 (04) : 401 - 420
  • [28] Evapotranspiration, water use efficiency, and yield for film mulched maize under different nitrogen-fertilization rates and climate conditions
    Fang, Heng
    Li, Yuannong
    Gu, Xiaobo
    Du, Yadan
    Chen, Pengpeng
    Hu, Hongxiang
    AGRICULTURAL WATER MANAGEMENT, 2024, 301
  • [29] Predicting grain yield and protein content using canopy reflectance in maize grown under different water and nitrogen levels
    Wang, Zhonglin
    Chen, Junxu
    Zhang, Jiawei
    Fan, Yuanfang
    Cheng, Yajiao
    Wang, Beibei
    Wu, Xiaoling
    Tan, Xianming
    Tan, Tingting
    Li, Shenglan
    Raza, Muhammad Ali
    Wang, Xiaochun
    Yong, Taiwen
    Liu, Weiguo
    Liu, Jiang
    Du, Junbo
    Wu, Yushan
    Yang, Wenyu
    Yang, Feng
    FIELD CROPS RESEARCH, 2021, 260
  • [30] Maize nitrogen uptake and use efficiency, partial factor productivity of nitrogen, and yield response to different nitrogen and water applications under three irrigation methods
    Irmak, Suat
    Mohammed, Ali T.
    IRRIGATION AND DRAINAGE, 2024, 73 (01) : 64 - 88