氮肥减量配施铁粉对稻田N2O排放和水稻产量年际变化的影响

Effects of Reducing Nitrogen Fertilizer Application and Combined Application of Iron Powder on the Interannual Variations of N2O Emission from Paddy Fields and Rice Yield

  • 摘要: 氮肥过量施用是造成水稻田氧化亚氮(N2O)大量排放的主要原因。减施氮肥可以缓解N2O排放, 但可能导致水稻减产, 而铁的添加则是一种潜在的解决方案。本研究通过三年田间原位试验, 设置7个处理, 包括常规施氮量(100%N)、80%常规施氮量(80%N)、60%常规施氮量(60%N)、不施氮肥(0%N)以及除常规施氮量以外配施铁粉的处理(80%N + Fe、60%N + Fe、0%N + Fe), 探索减施氮肥条件下配施铁粉对稻田N2O排放和水稻产量的影响。结果表明, 80%N + Fe处理具有稳产、增产的作用, 2022和2023年80%N + Fe处理的水稻产量与100%N处理无显著差异, 并且2023年80%N + Fe处理相较80%N处理显著提高了水稻产量(P<0.05)。2023年80%N、80%N + Fe、60%N和60%N + Fe处理N2O累积排放量相较100%N处理分别显著降低76.7%、68.4%、94.0%和99.8%(P<0.05)。年际变化和施氮水平均对水稻产量、N2O累积排放量具有显著影响, 而施氮水平还对N2O排放强度具有显著影响(P<0.05)。相关性分析表明, N2O累积排放量与土壤水分、电导率和硝态氮含量相关性显著(P<0.05)。随机森林和结构方程模型均显示, 硝态氮含量对于N2O累积排放量最为重要。综合2021-2023年试验结果, 水稻产量与N2O累积排放量呈极显著正相关(P<0.001)。长期减氮20%配施铁粉在维持水稻产量、缓解N2O排放方面具有良好的综合效益, 对于保障粮食安全、减少氮肥用量、减轻环境负效应具有积极意义。

     

    Abstract: Excessive application of nitrogen fertilizer is the primary cause of significant nitrous oxide (N2O) emissions from paddy fields. Reducing nitrogen application can mitigate N2O emissions but may lead to decreased rice yields, while iron supplementation presents a potential solution. This study conducted 3-year in-situ field experiments with seven treatments, including conventional nitrogen application (100%N), 80% of conventional nitrogen (80%N), 60% of conventional nitrogen (60%N), no nitrogen application (0%N), and treatments with iron powder supplementation under reduced nitrogen levels (80%N + Fe, 60%N + Fe, 0%N + Fe). The aim was to explore the effects of iron powder supplementation under reduced nitrogen conditions on N2O emissions and rice yield in paddy fields. The results show that while rice yields following the 80%N + Fe treatment were comparable with those under the 100%N treatment in both 2022 and 2023, it significantly outperformed the 80%N treatment in 2023 (P < 0.05). In 2023, the cumulative N2O emissions under 80%N, 80%N + Fe, 60%N, and 60%N + Fe treatments were significantly reduced by 76.7%, 68.4%, 94.0%, and 99.8%, respectively, compared to the 100%N treatment (P < 0.05). Interannual variability in environmental conditions or climatic parameters and nitrogen application levels significantly affected rice yield and cumulative N2O emissions, while nitrogen application levels also significantly influenced N2O emission intensity (P < 0.05). Correlation analysis revealed that cumulative N2O emissions were significantly correlated with soil moisture, electrical conductivity, and nitrate nitrogen contents over the 3-year experiment (P < 0.05). Both random forest and structural equation modeling identified nitrate nitrogen as the most critical factor influencing cumulative N2O emissions. Integrating results from the 2021-2023 rice-growing seasons, rice yield showed a highly significant positive correlation with cumulative N2O emissions (P < 0.001). Long-term 20% nitrogen reduction combined with iron powder supplementation demonstrated comprehensive benefits in maintaining rice yield and mitigating N2O emissions, offering positive implications for ensuring food security, reducing nitrogen fertilizer use, and alleviating environmental impacts.

     

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