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Journal of Integrative Agriculture  2026, Vol. 25 Issue (5): 1871-1886    DOI: 10.1016/j.jia.2025.07.005
Crop Science Advanced Online Publication | Current Issue | Archive | Adv Search |
Productivity and economic benefits of winter wheat in Northwest China by optimizing irrigation and planting density

Muhammad Fraz Ali1, Lijuan Ma1, Irsa Ejaz2, Wanrui Han1, Shengnan Wang1, Xiang Lin1, Dong Wang1#

1 State Key Laboratory of Crop Stress Resistance and High-Efficiency Production/College of Agronomy, Northwest A&F University, Yangling 712100, China

2 Department of Crop Science, Division of Agronomy, University of Göttingen, Göttingen 37075, Germany

 Highlights 
Optimized irrigation at jointing enhanced grain yield and net economic benefits.
Lower planting density enhanced dry matter accumulation (DMA), SPAD, and leaf area index (LAI), significantly improving yield.
Reduction in irrigation at key growth stages enhanced water-use efficiency (WUE) by mitigating evapotranspiration.
Integrated optimization of irrigation and planting density offers improved productivity and farm income in semi-arid Northwest China.
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摘要  

冬小麦是中国西北地区的重要主粮作物,但由于水资源限制和种植密度不佳,其产量和经济效益的提升仍面临挑战。本研究评估了灌溉方案与种植密度(PD)对冬小麦产量、资源利用效率和净经济效益(NEB)的综合影响。通过为期两年的田间试验,设置了四种灌溉处理(I1,无灌溉;I2,冬前和拔节期灌溉;I3,拔节期灌溉;I4,拔节期和开花期灌溉)和三个种植密度处理(PD1,562.5×10⁴ /公顷;PD2,375×10⁴ /公顷;PD3,187.5×10⁴ /公顷),确定了节水灌溉和种植密度的最佳组合,以实现籽粒产量最大化和水资源生产效率的提升。结果表明,低种植密度(187.5×10⁴ /公顷)下适当减少灌溉次数显著提高了干物质积累量(DMA)、SPAD值和叶面积指数(LAI),从而提升了籽粒产量。在较高种植密度下,仅在拔节期适度灌溉(I3)就可使籽粒产量较其他灌溉处理提高18.42%,而在中等种植密度下I3灌溉籽粒产量最高,达6,310 kg ha⁻¹。减少特定生育时期的灌溉,缓解了过度蒸散,水分利用效率(WUE)显著提高。PD3-I3组合在2022-23年和2023-24年的净经济效益分别比PD3条件下的I1、I2和I4处理高出11.9%18.4%16.4%15.1%14.0%8.4%。这些发现为小麦可持续生产提供了实践指导,确保在节约水资源的同时提高盈利能力。灌溉方案和种植密度的协同优化为中国西北半干旱地区的粮食安全和农业收入的提升提供了战略路径。



Abstract  

Winter wheat is a key staple crop in Northwest China, yet optimizing its productivity and economic returns remains a challenge due to water constraints and suboptimal planting densities.  This study evaluates the combined effects of irrigation strategies and planting density (PD) on winter wheat yield, resource-use efficiency, and net economic benefits (NEB).  A two-year field experiment was conducted under four irrigation treatments (I1, no irrigation; I2, before winter and jointing; I3, jointing; I4, jointing and anthesis) and three PD treatments (PD1, 562.5×104 plants ha–1; PD2, 375 ×104 plants ha–1; PD3, 187.5×104 plants ha–1).  Through field trials, we identified optimal water-saving irrigation regimes and planting densities that maximize grain yield while enhancing water productivity.  Our results demonstrated that lower PD (187.5×104 plants ha–1) under reduced irrigation significantly improved dry matter accumulation (DMA), SPAD, and leaf area index (LAI), leading to higher grain yield.  Moderate irrigation at the jointing stage (I3) enhanced grain yield in higher planting densities by up to 18.42% compared to other irrigation regimes, while the highest overall yield (6,310 kg ha–1) was achieved in medium PD under the I3 irrigation.  Water-use efficiency (WUE) was significantly improved by reducing irrigation at specific growth stages, mitigating excessive evapotranspiration.  PD3–I3 achieved the highest NEB, exceeding I1, I2, and I4 by 11.9, 18.4, and 16.4%, respectively, in 2022–2023 and by 15.1, 14.0, and 8.4%, respectively, in 2023–2024.  The findings provide practical insights for sustainable wheat production, ensuring higher profitability while conserving water resources.  Implementing optimized irrigation and PD strategies offers a strategic pathway to improving food security and farm income in the semi-arid regions of Northwest China.

Keywords:  grain yield       irrigation       net economic benefits       planting density       water use efficiency       winter wheat  
Received: 31 March 2025   Accepted: 20 June 2025 Online: 05 July 2025  
Fund: 

This work was supported by the Open Project of Shaanxi Laboratory for Agriculture in Arid Areas, China (2024ZY-JCYJ-02-30), the National Key Research and Development Program of China (2024YFD2300205), and the Key Research and Development Technology Projects in Shaanxi Province, China (2023-ZDLNY-01).

About author:  #Correspondence Dong Wang, E-mail: wangd@nwafu.edu.cn

Cite this article: 

Muhammad Fraz Ali, Lijuan Ma, Irsa Ejaz, Wanrui Han, Shengnan Wang, Xiang Lin, Dong Wang. 2026. Productivity and economic benefits of winter wheat in Northwest China by optimizing irrigation and planting density. Journal of Integrative Agriculture, 25(5): 1871-1886.

Bai S, Kang Y, Wan S. 2020. Winter wheat growth and water use under different drip irrigation regimes in the North China Plain. Irrigation Science38, 321–335.

Bai X, Fan Z, Yue T. 2023. Dynamic pattern-effect relationships between precipitation and vegetation in the semi-arid and semi-humid area of China. Catena232, 107425.

Bastos L M, Carciochi W, Lollato R P, Jaenisch B R, Rezende C R, Schwalbert R, Vara Prasad P V, Zhang G, Fritz A K, Foster C, Wright Y, Young S, Bradley P, Ciampitti I A. 2020. Winter wheat yield response to plant density as a function of yield environment and tillering potential: A review and field studies. Frontiers in Plant Science11, 54.

Cao Y, Cai H, Zhao L. 2022. Effects of growth-stage-based deficit irrigation management on physiological and biochemical characteristics and yield of winter wheat in Northwest China. Irrigation and Drainage71, 70–80.

Chou L, Dai J, Qian X, Karimipour A, Zheng X. 2021. Achieving sustainable soil and water protection: The perspective of agricultural water price regulation on environmental protection. Agricultural Water Management245, 106583.

Dai Y, Fan J, Liao Z, Zhang C, Yu J, Feng H, Zhang F, Li Z. 2022. Supplemental irrigation and modified plant density improved photosynthesis, grain yield and water productivity of winter wheat under ridge-furrow mulching. Agricultural Water Management274, 107985.

Dai Y, Liao Z, Lai Z, Bai Z, Zhang F, Li Z, Fan J. 2023. Interactive effects of planting pattern, supplementary irrigation and planting density on grain yield, water-nitrogen use efficiency and economic benefit of winter wheat in a semi-humid but drought-prone region of Northwest China. Agricultural Water Management287, 108438.

Fan Y, Liu J, Zhao J, Ma Y, Li Q. 2019. Effects of delayed irrigation during the jointing stage on the photosynthetic characteristics and yield of winter wheat under different planting patterns. Agricultural Water Management221, 371–376.

Fischer R A, Ramos O H M, Monasterio I O, Sayre K D. 2019. Yield response to plant density, row spacing and raised beds in low latitude spring wheat with ample soil resources: An update. Field Crops Research232, 95–105.

Friedman S P. 2024. Relationships between combined and individual field crops’ biomass and planting density. Field Crops Research305, 109188.

Gao Y, Zhang M, Yao C, Liu Y, Wang Z, Zhang Y. 2021. Increasing seeding density under limited irrigation improves crop yield and water productivity of winter wheat by constructing a reasonable population architecture. Agricultural Water Management253, 106951.

Gardner W H. 1986. Water content. In: Methods of Soil AnalysisPart 1 Physical and Mineralogical Methods. Wiley Online Library, Soil Science Society of America, Madison, Wisconsin. pp. 493–544.

Geng G, Yang R, Chen Q, Deng T, Yue M, Zhang B, Gu Q. 2023. Tracking the influence of drought events on winter wheat using long-term gross primary production and yield in the Wei River Basin, China. Agricultural Water Management275, 108019.

Guo Q, Huang G, Guo Y, Zhang M, Zhou Y, Duan L. 2021. Optimizing irrigation and planting density of spring maize under mulch drip irrigation system in the arid region of Northwest China. Field Crops Research266, 108141.

Hameed M, Ahmadalipour A, Moradkhani H. 2020. Drought and food security in the middle east: An analytical framework. Agricultural and Forest Meteorology281, 107816.

Han W, Lin X, Wang D. 2023. Uncovering the primary drivers of regional variability in the impact of climate change on wheat yields in China. Journal of Cleaner Production421, 138479.

Hecht V L, Temperton V M, Nagel K A, Rascher U, Postma J A. 2016. Sowing density: A neglected factor fundamentally affecting root distribution and biomass allocation of field grown spring barley (Hordeum vulgare L.). Frontiers in Plant Science7, 139–150.

Huang Y, Chen L, Fu B, Huang Z, Gong J. 2005. The wheat yields and water-use efficiency in the Loess Plateau: Straw mulch and irrigation effects. Agricultural Water Management72, 209–222.

van Ittersum M K, Leffelaar P A, Van Keulen H, Kropff M J, Bastiaans L, Goudriaan J. 2003. On approaches and applications of the Wageningen crop models. European Journal of Agronomy18, 201–234.

Ju H, van der Velde M, Lin E, Xiong W, Li Y. 2013. The impacts of climate change on agricultural production systems in China. Climatic Change120, 313–324.

Khan A, Ahmad A, Ali W, Hussain S, Ajayo B S, Raza M A, Kamran M, Te X, al Amin N, Ali S, Iqbal N, Khan I, Sattar M T, Ali A, Wu Y, Yang W. 2020. Optimization of plant density and nitrogen regimes to mitigate lodging risk in wheat. Agronomy Journal112, 2535–2551.

Khan A, Wang L, Ali S, Tung S A, Hafeez A, Yang G. 2017. Optimal planting density and sowing date can improve cotton yield by maintaining reproductive organ biomass and enhancing potassium uptake. Field Crops Research214, 164–174.

Li D, Zhang D, Wang H, Li H, Fang Q, Li H, Li R. 2020. Optimized planting density maintains high wheat yield under limiting irrigation in North China Plain. International Journal of Plant Production14, 107–117.

Li H R, Jia B, Wang H, Li D, Fang Q, He J, Li R. 2023. Yield response of supplementary irrigation at the anthesis stage of winter wheat. Agricultural Water Management284, 108352.

Li H T, Shao L, Liu X, Sun H, Chen S, Zhang X. 2023. What matters more, biomass accumulation or allocation, in yield and water productivity improvement for winter wheat during the past two decades? European Journal of Agronomy149, 126910.

Liu W, Ma G, Wang C, Wang J, Lu H, Li S, Feng W, Xie Y, Ma D, Kang G. 2018. Irrigation and nitrogen regimes promote the use of soil water and nitrate nitrogen from deep soil layers by regulating root growth in wheat. Frontiers in Plant Science9, 32.

Liu X, Yin B, Bao X, Hou X, Wang T, Shang C, Yang M, Zhen W. 2024. Optimization of irrigation period improves wheat yield by regulating source–sink relationship under water deficit. European Journal of Agronomy156, 127164.

Liu Y, Yang M, Yao C, Zhou X, Li W, Zhang Z, Gao Y, Sun Z, Wang Z, Zhang Y. 2021. Optimum water and nitrogen management increases grain yield and resource use efficiency by optimizing canopy structure in wheat. Agronomy11, 441.

Ma L, Ali M F, Ye Y, Huang X, Peng Z, Naseer M A, Wang R, Wang D. 2024. Irrigation and nitrogen management determine dry matter accumulation and yield of winter wheat under dryland conditions. Journal of Agronomy and Crop Science210, e12745.

Mao X M, Zhong W W, Wang X Y, Zhou X B. 2017. Effects of precision planting patterns and irrigation on winter wheat yields and water productivity. The Journal of Agricultural Science155, 1394–1406.

Mbava N, Mutema M, Zengeni R, Shimelis H, Chaplot V. 2020. Factors affecting crop water use efficiency: A worldwide meta-analysis. Agricultural Water Management228, 105878.

Mylonas I, Sinapidou E, Remountakis E, Sistanis I, Pankou C, Ninou E, Papadopoulos I, Papathanasiou F, Lithourgidis A, Gekas F, Dordas C, Tzantarmas C, Kargiotidou A, Tokamani M, Sandaltzopoulos R, Tokatlidis I S. 2020. Improved plant yield efficiency alleviates the erratic optimum density in maize. Agronomy Journal112, 1690–1701.

Nie H, Qin T, Yang H, Chen J, He S, Lv Z, Shen Z. 2019. Trend analysis of temperature and precipitation extremes during winter wheat growth period in the major winter wheat planting area of China. Atmosphere10, 240.

Noor H, Khan S, Sun M, Yu S, Ren A, Yang Z, Hou F, Li L, Wang Q, Gao Z. 2020. Effect of different sowing methods and nitrogen rates on yield and quality of winter wheat in loess plateau of China. Applied Ecology and Environmental Research18, 5701–5726.

Ren A, Sun M, Wang P, Xue L, Lei M, Xue J, Gao Z, Yang Z. 2019. Optimization of sowing date and seeding rate for high winter wheat yield based on pre-winter plant development and soil water usage in the Loess Plateau, China. Journal of Integrative Agriculture18, 33–42.

Shah F, Coulter J A, Ye C, Wu W. 2020. Yield penalty due to delayed sowing of winter wheat and the mitigatory role of increased seeding rate. European Journal of Agronomy119, 126120.

Shang Y, Lin X, Li P, Gu S, Lei K, Wang S, Hu X, Zhao P, Wang D. 2020. Effects of supplemental irrigation at the jointing stage on population dynamics, grain yield, and water-use efficiency of two different spike-type wheat cultivars. PLoS ONE15, e0230484.

Si Z, Qin A, Liang Y, Duan A, Gao Y. 2023. A review on regulation of irrigation management on wheat physiology, grain yield, and quality. Plants12, 692.

Smith M R, Rao I M, Merchant A. 2018. Source–sink relationships in crop plants and their influence on yield development and nutritional quality. Frontiers in Plant Science9, 1889.

Sun S, Yang X, Lin X, Sassenrath G F, Li K. 2018. Winter wheat yield gaps and patterns in China. Agronomy Journal110, 319–330.

Tian Z, Yin Y, Li B, Zhong K, Liu X, Jiang D, Cao W, Dai T. 2025. Optimizing planting density and nitrogen application to mitigate yield loss and improve grain quality of late-sown wheat under rice–wheat rotation. Journal of Integrative Agriculture24, 2558–2574.

Ullah H, Santiago-Arenas R, Ferdous Z, Attia A, Datta A. 2019. Improving water use efficiency, nitrogen use efficiency, and radiation use efficiency in field crops under drought stress: A review. Advances in Agronomy156, 109–157.

Wang D. 2017. Water use efficiency and optimal supplemental irrigation in a high yield wheat field. Field Crops Research213, 213–220.

Wang S, Niu Y, Shang L, Li Z, Lin X, Wang D. 2023. Supplemental irrigation at the jointing stage of late sown winter wheat for increased production and water use efficiency. Field Crops Research302, 109069.

Wang Z, Wang B, Kuai J, Li Z, Bai R, Zhou G. 2021. Planting density and variety intercropping improve organ biomass distribution of rapeseed to alleviate the trade-off between yield and lodging resistance. Crop Science61, 2696–2712.

Wu B, Lin X, Ali M F, Wang D. 2023. Development of an irrigation regime for winter wheat to save water resources by avoiding irrigation at anthesis stage. Journal of Agronomy and Crop Science209, 188–203.

Wu J, Gu Y, Sun K, Xing X, Ma X. 2024. Impacts of climate change on winter wheat net primary production: The regulatory role of crop management. Journal of the Science of Food and Agriculture104, 1420–1430.

Xu C, Tao H, Tian B, Gao Y, Ren J, Wang P. 2016. Limited-irrigation improves water use efficiency and soil reservoir capacity through regulating root and canopy growth of winter wheat. Field Crops Research196, 268–275.

Xu X, Zhang M, Li J, Liu Z, Zhao Z, Zhang Y, Zhou S, Wang Z. 2018. Improving water use efficiency and grain yield of winter wheat by optimizing irrigations in the North China Plain. Field Crops Research221, 219–227.

Yang D, Cai T, Luo Y, Wang Z. 2019. Optimizing plant density and nitrogen application to manipulate tiller growth and increase grain yield and nitrogen-use efficiency in winter wheat. Peer J7, e6484.

Yang Y, Tong Y, Liu G, Han W, Li H. 2022. Conservation tillage methods affect soil water use and spring maize yield in a semi-humid drought-prone area of China. Acta Ecologica Sinica42, 453–460.

You Y, Song P, Yang X, Zheng Y, Dong L, Chen J. 2022. Optimizing irrigation for winter wheat to maximize yield and maintain high-efficient water use in a semi-arid environment. Agricultural Water Management273, 107901.

Zeng R, Lin X, Welch S M, Yang S, Huang N, Sassenrath G F, Yao F. 2023. Impact of water deficit and irrigation management on winter wheat yield in China. Agricultural Water Management287, 108431.

Zhang T, Zuo Q, Ma N, Shi J, Fan Y, Wu X, Wang L, Xue X, Ben-Gal A. 2023. Optimizing relative root-zone water depletion thresholds to maximize yield and water productivity of winter wheat using AquaCrop. Agricultural Water Management286, 108391.

Zhang Y, Dai X, Jia D, Li H, Wang Y, Li C, Xu H, He M. 2016. Effects of plant density on grain yield, protein size distribution, and breadmaking quality of winter wheat grown under two nitrogen fertilisation rates. European Journal of Agronomy73, 1–10.

Zhang Z, Ahmed S, Chattha M S, Liu A, Liu J, Lv N, Yang L, Ma X, Li X, Hao F, Yang G. 2023. Managing plant density and nitrogen fertilizer to reduce nitrogen input without yield reduction of late-sown cotton after wheat by improving light interception and sink nitrogen partitioning in a double cropping system. Field Crops Research295, 108875.

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