Assessment of the sustainability of different cropping systems under three irrigation strategies in the North China Plain under climate change

被引:46
|
作者
Yan, Zongzheng [1 ,2 ]
Zhang, Xiying [1 ]
Rashid, Muhammad Adil [3 ]
Li, Hongjun [1 ]
Jing, Haichun [4 ]
Hochman, Zvi [5 ]
机构
[1] Chinese Acad Sci, Ctr Agr Resources Res, Inst Genet & Dev Biol, Key Lab Agr Water Resources,Hebei Lab Agr Water S, Shijiazhuang 050021, Hebei, Peoples R China
[2] Univ Chinese Acad Sci, Beijing 100049, Peoples R China
[3] Aarhus Univ, Dept Agroecol, Blichers Alle 20, DK-8830 Tjele, Denmark
[4] Chinese Acad Sci, Inst Bot, Key Lab Plant Resources, Beijing 100093, Peoples R China
[5] CSIRO Agr & Food, Queensland Biosci Precinct, 306 Carmody Rd, St Lucia, Qld 4076, Australia
关键词
Winter wheat; Maize; Yield; Evapotranspiration; Soil evaporation; Double-cropping systems; Reduced cropping intensity; Water use efficiency (WUE); WATER-USE EFFICIENCY; WINTER-WHEAT; GRAIN-YIELD; ROTATION SYSTEM; LOESS PLATEAU; SOWING DATE; GROUNDWATER; IMPACT; MAIZE; EVAPOTRANSPIRATION;
D O I
10.1016/j.agsy.2019.102745
中图分类号
S [农业科学];
学科分类号
09 ;
摘要
The annual double-cropping system of winter wheat and summer maize requires a large amount of irrigation which has led to the rapid depletion of groundwater resources in the North China Plain (NCP). Alternate cropping systems and limited irrigation strategies should be developed for the purposes of maintaining sustainable groundwater use now and in the future. In this study, the water use and crop production of seven cropping systems under three irrigation strategies were assessed using the Agricultural Production Systems SIMulator (APSIM) during 1987-2017 as a baseline and in 2040, 2060, and 2080 under climate change conditions at a typical site in the NCP. The APSIM was calibrated and validated using field experimental data collected during 2007-2016. The seven cropping systems included the current double annual cropping system (2C/1Y) and six other reduced cropping-intensity systems with either three crops every two years (3C/2Y) or one crop per year (1C/1Y). The three irrigation strategies were full irrigation (FI), minimum irrigation (MI, only one irrigation at sowing for seedling establishment) and critical stage irrigation (CI, adding one more irrigation at the critical stage based on MI). The results showed that under current growing conditions, sustainable groundwater use could be achieved with 2C/1Y under MI, 3C/2Y and 1C/1Y under FI. However, the annual yield production was reduced by 9-22% under 3C/2Y and 54-79% under 1C/1Y compared with that under 2C/1Y. The results indicated that 2C/1Y was a better choice for crop production under similar water use. The simulated yield for future scenarios was lower than that during the baseline period; and the reduction rate varied from 2 to 11% under FI; 6-9% under CI; and 10-21% under MI, suggesting that crop production would be more negatively affected under water-limited conditions than that under full water supply condition. The annual water use of the reduced cropping systems was projected to increase because of relative high soil evaporation during the fallow period (Ef). Water use efficiency (WUE) was reduced partly due to the increased Ef. The traditional 2C/1Y under MI had the potential to sustain the groundwater balance in the region and concurrently resulted in higher grain production and WUE than that of the systems with reduced cropping intensity, both now and under climate change, and therefore, this system should be prioritized in this region.
引用
收藏
页数:12
相关论文
共 50 条
  • [41] Productivity and economics of different cropping systems under various levels of irrigation
    Singh, V
    Deo, R
    INDIAN JOURNAL OF AGRONOMY, 1998, 43 (03) : 419 - 425
  • [42] Effects of different irrigation methods on regional climate in North China Plain: A modeling study
    Yuan, Tiangang
    Tai, Amos P. K.
    Mao, Jia
    Li, Ronald K. K.
    Wu, Jin
    Li, Sien
    AGRICULTURAL AND FOREST METEOROLOGY, 2023, 342
  • [43] Nitrogen Utilization under Drip Irrigation with Sewage Effluent in the North China Plain
    Guo, Lijun
    Li, Jiusheng
    Li, Yanfeng
    Xu, Di
    IRRIGATION AND DRAINAGE, 2017, 66 (05) : 699 - 710
  • [44] Correction to: Winter wheat growth and water use under different drip irrigation regimes in the North China Plain
    Shanshan Bai
    Yaohu Kang
    Shuqin Wan
    Irrigation Science, 2020, 38 : 479 - 479
  • [45] Assessing crop water stress of winter wheat by thermography under different irrigation regimes in North China Plain
    Zia, Shamaila
    Wenyong, Du
    Spreer, Wolfram
    Spohrer, Klaus
    Xiongkui, He
    Müller, Joachim
    International Journal of Agricultural and Biological Engineering, 2012, 5 (03)
  • [46] Comprehensive analysis of resource utilization efficiency under different tillage systems in North China Plain
    He, Cong
    Wang, Yu-Qiao
    Yu, Wei-Bao
    Kou, Yi-Hong
    Yves, Bohoussou N'dri
    Zhao, Xin
    Zhang, Hai-Lin
    JOURNAL OF CLEANER PRODUCTION, 2022, 347
  • [47] Deficit Irrigation at Pre-Anthesis Can Balance Wheat Yield and Water Use Efficiency under Future Climate Change in North China Plain
    Niu, Xiaoli
    Feng, Puyu
    Liu, De-Li
    Wang, Bin
    Waters, Cathy
    Zhao, Na
    Ma, Tiancheng
    BIOLOGY-BASEL, 2022, 11 (05):
  • [48] Optimization of sowing date and irrigation schedule of maize in different cropping systems by APSIM for realizing grain mechanical harvesting in the North China Plain
    Wang, Jintao
    Dong, Xinliang
    Qiu, Rangjian
    Lou, Boyuan
    Tian, Liu
    Chen, Pei
    Zhang, Xuejia
    Liu, Xiaojing
    Sun, Hongyong
    AGRICULTURAL WATER MANAGEMENT, 2023, 276
  • [49] Water drainage and nitrate leaching under traditional and improved management of vegetable-cropping systems in the North China Plain
    Yu, HR
    Li, ZZ
    Gong, YS
    Mack, U
    Feger, KH
    Stahr, K
    JOURNAL OF PLANT NUTRITION AND SOIL SCIENCE, 2006, 169 (01) : 47 - 51
  • [50] Optimal Irrigation under the Constraint of Water Resources for Winter Wheat in the North China Plain
    Shi, Xiaoli
    Shi, Wenjiao
    Dai, Na
    Wang, Minglei
    AGRICULTURE-BASEL, 2022, 12 (12):