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Effects of Straw Returning and Nitrogen Fertilizer Types on Summer Maize Yield and Soil Ammonia Volatilization Under Future Climate Change
Scientia Agricultura Sinica 2023, 56(1): 104-117
Published: 01 January 2023
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【Objective】

Returning straw to the field and applying nitrogen fertilizer can increase crop productivity. However, under the conditions of climate change, the different management measures have great uncertainty in the nitrogen utilization of summer maize farmland. It is very important to clarify the impact of straw returning and nitrogen fertilizer types on summer maize yield and soil ammonia volatilization under future climate conditions.

【Method】

This study used the DNDC model to predict the impact of returning straw to the field and different types of nitrogen fertilizers on summer maize yield and soil ammonia volatilization accumulation in Guanzhong area under different scenarios in the future. Through the verification of field soil temperature, moisture, yield and soil ammonia volatilization test data, the DNDC model could simulate crop yields and soil ammonia volatilization accumulations under different treatments under the future climate conditions well.

【Result】

Both simulation and actual measurement results showed that returning straw to the field increased summer maize yields and promoted soil ammonia volatilization under the current climate conditions. Compared with ordinary urea, slow-release fertilizers had no significant effect on summer maize yield but would significantly reduce soil ammonia volatilization accumulation. Sensitivity analysis showed that both crop yield and soil ammonia volatilization accumulation were the most sensitive to nitrogen application. Under the RCP4.5 emission scenario, the single application of stable nitrogen fertilizer (NF1) treatment and single application of urea (NF2) treatment significantly reduced the summer maize yield in 2050s-2090s and 2070s-2090s, respectively. Both the treatment of straw combined with stable nitrogen fertilizer (SF1) and the treatment of straw combined with urea (SF2) significant increased summer maize yield in 2050s-2090s; under the RCP8.5 emission scenario, NF1 significantly reduced the summer maize yield from 2070s to 2090s, and NF2 showed no significant change. The summer maize yields under SF1 and SF2 were increased significantly from 2050s to 2090s. For NF1 under the RCP4.5 emission scenario in 2050s-2090s and under the RCP8.5 emission scenario 2030s-2090s, the soil ammonia volatilization accumulation significantly increased compared with current climate conditions; for the remaining treatments, the cumulative amount of soil ammonia volatilization in future periods under different emission scenarios would be significantly reduce compared with current climatic conditions.

【Conclusion】

The DNDC forecast results showed that under the climate conditions of rising temperature and CO2 concentration and changing precipitation in the Guanzhong area in the future, the returning straw to the field and applying stable nitrogen fertilizer would significantly increase the summer maize yield and reduce the accumulation of ammonia volatilization in the soil, and it was the best high-yield and emission-reducing farmland management plan. This research provided a theoretical basis for coping with climate change and the rational use of straw and nitrogen fertilizer.

Issue
Optimizing planting density to improve growth, yield and resource use efficiencies for winter oilseed rape under ridge-furrow film mulching
Journal of Integrative Agriculture (JIA) 2025, 24(10): 3819-3837
Published: 16 April 2024
Abstract PDF (884.3 KB) Collect
Downloads:4

Ridge-furrow film mulching has been widely used as a water-saving and yield-increasing planting pattern in arid and semiarid regions. Planting density is also a vitally important factor influencing crop yield, and the optimal planting density will vary in different environments (such as ridge-furrow film mulching). How the combination of film mulching and planting density will affect the growth, physiology, yield, and water and radiation use efficiencies of winter oilseed rape is not clear yet. Therefore, a three-year field experiment was conducted from 2017 to 2020 to explore the responses of leaf chlorophyll (Chl) content, net photosynthetic rate (Pn), leaf area index (LAI), aboveground dry matter (ADM), root growth and distribution, yield, evapotranspiration (ET), water use efficiency (WUE), and radiation use efficiency (RUE) of winter oilseed rape to different film mulching patterns (F, ridge-furrow planting with plastic film mulching over the ridges; N, flat planting without mulching) and planting densities (LD, 100,000 plants ha–1; MD, 150,000 plants ha–1; HD, 200,000 plants ha–1). The results showed that the F treatments led to significantly greater leaf Chl contents, Pn, LAI, and ADM, and a stronger root system than treatments without film mulching throughout the whole winter rapeseed growing seasons. Winter oilseed rape in the MD treatments had better physiological (leaf Chl contents and Pn) and growth (LAI, ADM, taproot, and lateral root) conditions than in LD and HD at the late growth period after stem-elongation. Grain yield in FMD was the greatest, and it was significantly greater by 34.8–46.0%, 6.7–9.6%, 87.8–108.3%, 38.7–50.3%, and 50.2–61.8% compared to those of FLD, FHD, NLD, NMD, and NHD, respectively. Furthermore, the ET in FMD was equivalent to FLD and FHD, but was markedly lower by 12.2–18.4%, 14.5–20.3%, and 14.6–20.4% than in NLD, NMD, and NHD. Finally, the WUE and RUE in FMD were significantly improved by 88.5–94.0% and 29.0–41.8% compared to NHD (the local conventional planting pattern and planting density for winter rapeseed). In summary, FMD is a favorable cultivation management strategy to save water, increase yield and improve resource utilization efficiencies in winter oilseed rape in Northwest China.

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