Optimizing seasonal nitrogen reallocation enhances productivity and fertilizer-N recovery while reducing nitrogen losses in a rapeseed-rice rotation

Context Optimizing seasonal nitrogen (N) allocation in crop rotations is essential for improving system productivity and reducing environmental N losses, yet most N management strategies remain focused on individual crop seasons. Objective A two-year field experiment was conducted in a plateau lake region of Southwest China to evaluate whether reallocating a fixed annual N input between seasons could improve yield, fertilizer N recovery, and environmental performance in a rapeseed-rice rotation. Methods Five N treatments were examined: no N fertilizer application as the control, farmers’ conventional practice with 210 kg N ha −1 for rapeseed and 180 kg N ha −1 for rice (T1; 390 kg N ha −1 ), and three optimized treatments with a fixed annual N input of 330 kg N ha −1 but different rapeseed/rice allocations: 150/180 (T2), 180/150 (T3), and 210/120 kg N ha −1 (T4). Crop yield, N use efficiency, NH₃ volatilization, runoff N loss, and leaching N loss were measured. Fertilizer N fate was further quantified using 15 N-labeled urea in treatments T2 to T4. Results and conclusions At a fixed annual nitrogen fertilizer application rate, reallocating more N to the rapeseed season significantly increased rapeseed yield without reducing rice yield. Compared with rice-prioritized T2, T4 increased rapeseed yield by 42.96–49.80% and annual system yield by 15.83–16.45%. Meanwhile, T4 reduced annual NH 3 volatilization loss by 32.66–36.84%, runoff N loss by 12.80–26.30%, and leaching N loss by 16.41–18.34%. The 15 N results showed that cumulative fertilizer N recovery increased from 35.78% in T2–47.56% in T4, whereas unaccounted-for fertilizer N decreased from 51.41% to 38.99%. Soil residual fertilizer N remained similar among treatments. Significance These results indicate that, under the conditions of this study, reallocating N at the rotation scale can simultaneously improve system productivity and fertilizer N recovery while reducing the measured N-loss pathways in a rapeseed–rice rotation.

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Publication Details

Journal
Field Crops Research
Published
2026-09-16
DOI
https://doi.org/10.1016/j.fcr.2026.110714
Primary Topic
Soil Carbon and Nitrogen Dynamics
Type
article
Field-Weighted Citation Impact
0.00
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article

Optimizing seasonal nitrogen reallocation enhances productivity and fertilizer-N recovery while reducing nitrogen losses in a rapeseed-rice rotation

Tao Jiang, 段永坤, Jiuliang Xu, Jun Cao et al.
Field Crops Research
Soil Carbon and Nitrogen Dynamics
article

Optimizing seasonal nitrogen reallocation enhances productivity and fertilizer-N recovery while reducing nitrogen losses in a rapeseed-rice rotation

Tao Jiang, 段永坤, Jiuliang Xu, Jun Cao, Rui Wang, Yujiao Tan, Qingsheng Liu, Sizhi Wang, Duo Lan, Rong Li
article en

Abstract

Context Optimizing seasonal nitrogen (N) allocation in crop rotations is essential for improving system productivity and reducing environmental N losses, yet most N management strategies remain focused on individual crop seasons. Objective A two-year field experiment was conducted in a plateau lake region of Southwest China to evaluate whether reallocating a fixed annual N input between seasons could improve yield, fertilizer N recovery, and environmental performance in a rapeseed-rice rotation. Methods Five N treatments were examined: no N fertilizer application as the control, farmers’ conventional practice with 210 kg N ha −1 for rapeseed and 180 kg N ha −1 for rice (T1; 390 kg N ha −1 ), and three optimized treatments with a fixed annual N input of 330 kg N ha −1 but different rapeseed/rice allocations: 150/180 (T2), 180/150 (T3), and 210/120 kg N ha −1 (T4). Crop yield, N use efficiency, NH₃ volatilization, runoff N loss, and leaching N loss were measured. Fertilizer N fate was further quantified using 15 N-labeled urea in treatments T2 to T4. Results and conclusions At a fixed annual nitrogen fertilizer application rate, reallocating more N to the rapeseed season significantly increased rapeseed yield without reducing rice yield. Compared with rice-prioritized T2, T4 increased rapeseed yield by 42.96–49.80% and annual system yield by 15.83–16.45%. Meanwhile, T4 reduced annual NH 3 volatilization loss by 32.66–36.84%, runoff N loss by 12.80–26.30%, and leaching N loss by 16.41–18.34%. The 15 N results showed that cumulative fertilizer N recovery increased from 35.78% in T2–47.56% in T4, whereas unaccounted-for fertilizer N decreased from 51.41% to 38.99%. Soil residual fertilizer N remained similar among treatments. Significance These results indicate that, under the conditions of this study, reallocating N at the rotation scale can simultaneously improve system productivity and fertilizer N recovery while reducing the measured N-loss pathways in a rapeseed–rice rotation.

Field Crops ResearchVol. 349
Yunnan University (CN), Yunnan Academy of Agricultural Sciences (CN), Yunnan Institute of Environmental Sciences (CN), China Agricultural University (CN), Dali University (CN)
Openalex Percentile: Top 13%
Soil Carbon and Nitrogen Dynamics
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