Potential deficit irrigation adaptation strategies under climate change for sustaining cotton production in hyper-arid areas

被引:1
作者
Chen, Xiaoping [1 ]
Dong, Haibo [1 ]
Qi, Zhiming [2 ]
Gui, Dongwei [3 ]
Ma, Liwang [4 ]
Thorp, Kelly R. [5 ]
Malone, Robert [6 ]
Wu, Hao [1 ]
Liu, Bo [1 ]
Feng, Shaoyuan [1 ]
机构
[1] Yangzhou Univ, Coll Hydraul Sci & Engn, Yangzhou 225009, Jiangsu, Peoples R China
[2] McGill Univ, Dept Bioresource Engn, Ste Anne De Bellevue, PQ, Canada
[3] Cele Natl Stn Observat & Res Desert Grassland Ecos, Cele 848300, Xinjiang, Peoples R China
[4] USDA ARS, Rangeland Resources & Syst Res Unit, Ft Collins, CO 80526 USA
[5] USDA ARS, Grassland Soil & Water Res Lab, Temple, TX 76502 USA
[6] USDA ARS, Natl Lab Agr & Environm, Ames, IA 50011 USA
关键词
Deficit irrigation; Climate change; Cotton yield; Crop model; Water productivity; WATER-USE EFFICIENCY; CSM-CROPGRO-COTTON; FUTURE CLIMATE; CHANGE IMPACTS; AGRICULTURAL WATER; FIBER QUALITY; ELEVATED CO2; YIELD; GROWTH; EVAPOTRANSPIRATION;
D O I
10.1016/j.agwat.2025.109417
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Affected by climate change and elevated atmospheric CO2 levels, the efficacy of agricultural management practices is of particular concern in a hyper-arid area. The effects of future climate change on cotton (Gossypium hirsutum L.) yield and water productivity (WP) were assessed under deficit irrigation strategies in China's southern Xinjiang region. A previously calibrated and validated RZWQM2 model simulated cotton production for two time periods ranging between 2061-2080 and 2081-2100, under automatic irrigation method based on crop plant available water, factorially combined with four irrigation levels (100 %, 80 %, 60 %, and 50 %). Weather data was obtained from ten general circulation models, and two Shared Socioeconomic Pathways were tested. Deficit irrigation under climate change showed a simulated decrease in water use and production of cotton compared to the baseline (1960-2019). For the 2061-2080 period, mean simulated seed cotton yields were 4.43, 4.44, 3.95 and 3.47 Mg ha-1 (vs. baseline: 4.65, 4.40, 3.58, 2.63 Mg ha- 1) with the 100 %, 80 %, 60 % and 50 % irrigation levels. A 3.4 %-28.6 % of decrease (vs. baseline) in seed cotton yield was found under SSP585 scenario in 2081-2100. The 80 %PAW-based irrigation provided the highest WP of 12.8 kg m-3 and 8.4 kg m-3 for 2061-2080 and 2081-2100, respectively, comparing to the baseline WP of 0.82 kg m-3. Under SSP585 for 2081-2100, the simulated WP declined from 0.19 kg m-3 at 100 % irrigation levels to 0.04 kg m-3 at 50 % irrigation levels. These projections suggests that adequate irrigation is the key to ensure cotton production and moderate deficit irrigation can be applied to mitigate the negative impacts of climate change on cotton yield in a hyper-arid area.
引用
收藏
页数:11
相关论文
共 73 条
[51]   Quantifying crop water stress factors from soil water measurements in a limited irrigation experiment [J].
Saseendran, S. A. ;
Trout, T. J. ;
Ahuja, L. R. ;
Ma, L. ;
McMaster, G. S. ;
Nielsen, D. C. ;
Andales, A. A. ;
Chavez, J. L. ;
Ham, J. .
AGRICULTURAL SYSTEMS, 2015, 137 :191-205
[52]   Simulated yield and profitability of five potential crops for intensifying the dryland wheat-fallow production system [J].
Saseendran, S. A. ;
Nielsen, D. C. ;
Ahuja, L. R. ;
Ma, L. ;
Lyon, D. J. .
AGRICULTURAL WATER MANAGEMENT, 2013, 116 :175-192
[53]   Water productivity, growth, and physiological assessment of deficit irrigated cotton on hyperarid desert-oases in northwest China [J].
Shareef, Muhammad ;
Gui, Dongwei ;
Zeng, Fanjiang ;
Waqas, Muhammad ;
Zhang, Bo ;
Iqbal, Hassan .
AGRICULTURAL WATER MANAGEMENT, 2018, 206 :1-10
[54]   Field and model assessments of irrigated soybean responses to increased air temperature [J].
Sima, M. W. ;
Fang, Q. X. ;
Burkey, K. O. ;
Ray, S. J. ;
Pursley, W. A. ;
Kersebaum, K. C. ;
Boote, K. J. ;
Malone, R. W. .
AGRONOMY JOURNAL, 2020, 112 (06) :4849-4860
[55]   Irrigation rate and timing effects on Arizona cotton yield, water productivity, and fiber quality [J].
Thorp, K. R. ;
Thompson, A. L. ;
Bronson, K. F. .
AGRICULTURAL WATER MANAGEMENT, 2020, 234
[56]  
Thorp KR, 2014, T ASABE, V57, P1627
[57]   Modelling cereal crops to assess future climate risk for family food self-sufficiency in southern Mali [J].
Traore, Bouba ;
Descheemaeker, Katrien ;
van Wijk, Mark T. ;
Corbeels, Marc ;
Supit, Iwan ;
Giller, Ken E. .
FIELD CROPS RESEARCH, 2017, 201 :133-145
[58]   Separate and combined effects of temperature and precipitation change on maize yields in sub-Saharan Africa for mid- to late-21st century [J].
Waha, K. ;
Mueller, C. ;
Rolinski, S. .
GLOBAL AND PLANETARY CHANGE, 2013, 106 :1-12
[59]   Irrigation modulates the effect of increasing temperatures under climate change on cotton production of drip irrigation under plastic film mulching in southern Xinjiang [J].
Wang, Hongbo ;
Yin, Zi ;
Zhang, Lei ;
Zhao, Fengnian ;
Huang, Weixiong ;
Wang, Xingpeng ;
Gao, Yang .
FRONTIERS IN PLANT SCIENCE, 2022, 13
[60]  
Wang J, 2018, J WATER RES PLAN MAN, V144, DOI [10.1061/(ASCE)WR.1943-5452.0001008, 10.1061/(asce)wr.1943-5452.0001008]