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生态学杂志 ›› 2026, Vol. 45 ›› Issue (8): 2621-2632.doi: 10.13292/j.1000-4890.202608.036

• 研究论文 • 上一篇    下一篇

不同氧气条件下土壤容重和粒径对东北黑土氧化亚氮和氮气排放的影响

魏欢欢1,2,蒋历行3,谭月臣4,5*,吴迪1,2   

  1. 1中国科学院沈阳应用生态研究所森林生态与保育重点实验室, 沈阳 110016; 2辽宁省稳定同位素技术重点实验室, 沈阳 110016; 3中国农业大学资源与环境学院, 北京 100193; 4中国林业科学研究院生态保护与修复研究所,湿地生态功能与恢复北京市重点实验室, 北京 100091; 5中国林业科学研究院湿地环境保护与生态修复全国重点实验室, 北京 100091)

  • 出版日期:2026-08-10 发布日期:2026-08-14

Effects of soil bulk density and aggregate size on nitrous oxide and dinitrogen emissions from Northeast China Mollisols under varying oxygen conditions.

WEI Huanhuan1,2, JIANG Lixing3, TAN Yuechen4,5*, WU Di1,2   

  1. (1CAS Key Laboratory of Forest Ecology and Silviculture, Institute of Applied Ecology, Chinese Academy of Sciences, Shenyang 110016, China; 2Key Laboratory of Stable Isotope Techniques and Applications, Shenyang 110016, China; 3College of Resources and Environmental Sciences, China Agricultural University, Beijing 100193, China; 4Beijing Key Laboratory of Wetland Services and Restoration, Institute of Ecological Conservation and Restoration, Chinese Academy of Forestry, Beijing 100091, China; 5State Key Laboratory of Wetland Conservation and Restoration, Chinese Academy of Forestry, Beijing 100091, China).

  • Online:2026-08-10 Published:2026-08-14

摘要: 我国东北黑土区正面临土壤结构恶化、耕层变薄和肥力下降等问题,黑土物理结构障碍可能对土壤氮素转化造成影响。为探究土壤容重和粒径改变对黑土氮循环途径及气态氮损失的影响,本研究采用土壤反硝化氮气排放自动监测系统(Roflow)开展试验,设置两组处理,一组为不同容重处理(1.0、1.2、1.4、1.6 g·cm-3),另一组为不同粒径处理(不过筛、过1、2、4 mm筛),两组处理分别在好氧(20%O2+80%He)与厌氧(100%He)条件下进行土壤N2O和N2排放速率的在线监测,探究土壤结构对硝化速率、反硝化速率及N2O和N2排放的调控机制。研究发现,容重和粒径均显著影响N2O和N2排放。1.4 g·cm-3处理(BD1.4)在好氧阶段N2O排放最高,而1.6 g·cm-3处理(BD1.6)在厌氧阶段N2O累积排放量比其他处理高55.1%。中等粒径(1~2 mm)处理的N2O排放峰和累积排放量最高,且抑制了N2O向N2的还原途径。中等容重会促进硝化过程产生的N2O,高容重则会在厌氧条件下导致反硝化途径N2O排放量增加;粗粒径(M4)和原状土(M0)处理通气性较好,有较高的净硝化速率,而细粒径的硝化能力最弱。不同容重处理中,N2O排放与净硝化速率呈显著正相关,而在不同粒径处理中则为负相关关系(P<0.01),反映出土壤物理结构的微环境对硝化反应及N2O还原过程具有重要的调控作用。本研究揭示了东北黑土区土壤物理结构调控氮素转化与N2O排放路径的差异机制,为土壤物理结构改良与氮素转化调控途径提供了理论依据。


关键词: 黑土, 容重, 粒径, N2O, 产物比

Abstract: The Mollisol belt of Northeast China is currently experiencing problems such as deterioration of soil structure, thinning of topsoil layer, and decline in fertility, which may have an adverse impact on soil nitrogen transformation. We investigated the effects of soil bulk density and aggregate size on nitrogen cycling and gaseous nitrogen losses in Mollisols from Northeast China. Two groups of treatments were established using a Roflow automated helium-based soil incubation monitoring system: one manipulating bulk density (1.0, 1.2, 1.4, and 1.6 g·cm-3), and the other varying soil aggregate sizes (unfractionated, <1, 1-2, and 2-4 mm). Emissions of N2O and N2 were continuously monitored under both aerobic (20% O2 + 80% He) and anaerobic (100% He) conditions. Coupling these observations with changes in inorganic nitrogen and the N2O/(N2O+N2) ratio, we explored how soil physical structure regulates the emission pathways of N2O and N2. Results showed that both bulk density and aggregate size significantly affected N2O and N2 emissions. Under aerobic conditions, the 1.4 g·cm-3 treatment exhibited the highest N2O emission. Under anaerobic conditions, the 1.6 g·cm-3 treatment had 55.1% higher cumulative N2O emission than other treatments. The intermediate aggregate size (1-2 mm) treatment resulted in the highest N2O emission peaks and cumulative emission and inhibited the reduction of N2O to N2. These findings suggest that moderate bulk density promotes nitrification-derived N2O emissions, whereas high bulk density enhances denitrification-derived N2O production under anaerobic conditions. Coarser aggregates (2-4 mm) and unfractionated soil (intact structure) exhibited better aeration and higher net nitrification rates, while fine aggregates showed the weakest nitrification potential. There was a significant positive correlation between N2O emissions and net nitrification rates under varying bulk density treatments, while there was a significant negative correlation under different aggregate size treatments (P<0.01). Those results indicate that micro-environmental changes induced by soil physical structure play a critical role in modulating nitrification and N2O reduction processes. Overall, our results elucidate the mechanistic differences in nitrogen transformation and N2O emission pathways regulated by soil structure in the Mollisols of Northeast China. These insights provide a theoretical basis for optimizing soil physical properties to mitigate gaseous nitrogen losses and improve nitrogen use efficiency.


Key words: black soil, bulk density, particle size, N2O, product ratio