中国农业气象 ›› 2026, Vol. 47 ›› Issue (8): 1215-1223.doi: 10.3969/j.issn.1000-6362.2026.08.004

• 农业生态环境栏目 • 上一篇    下一篇

青藏高原高寒草甸土壤有机碳对氮添加和降水改变的响应

高延锋,宋成刚,王雯,张法伟,独威,祝景彬   

  1. 1. 洛阳市园林绿化中心,洛阳 471027;2. 青海省工程咨询中心有限责任公司,西宁 810001;3. 中国科学院西北高原生物研究所高原生物适应与进化重点实验室,西宁 810008;4. 生态环境部环境发展中心,北京 100029;5. 枣庄学院旅游与资源环境学院,枣庄 277160
  • 收稿日期:2025-06-03 出版日期:2026-08-20 发布日期:2026-08-18
  • 作者简介:高延锋,E-mail:gyf81420@163.com
  • 基金资助:
    青海省重点研发与转化计划科技国际合作专项项目(2024−HZ−801);青海省寒区恢复生态学重点实验室开放课题(2023−KF−03);国家自然科学基金面上项目(32471752);河南省自然科学基金面上项目(242300420170);青海省2021、2022昆仑英才-拔尖人才项目

Responses of Soil Organic Carbon to Nitrogen Addition and Altered Precipitation in an Alpine Meadow on the Qinghai−Tibet Plateau

GAO Yan-feng, SONG Cheng-gang, WANG Wen, ZHANG Fa-wei, DU Wei, ZHU Jing-bin   

  1. 1. Luoyang Landscape Architecture and Greening Center, Luoyang 471027, China; 2. Qinghai Engineering Consulting Center Co., Ltd., Xining 810001; 3. Key Laboratory of Adaptation and Evolution of Plateau Biota, Northwest Institute of Plateau Biology, Chinese Academy of Sciences, Xining 810008; 4. Center of Environment Development, Ministry of Ecology and Environment of the People’s Republic of China, Beijing 100029; 5. College of Tourism, Resources and Environment, Zaozhuang University, Zaozhuang 277160
  • Received:2025-06-03 Online:2026-08-20 Published:2026-08-18

摘要: 提升土壤有机碳(SOC)固存能力是减缓气候变化的重要自然解决方案。为阐明不同深度土壤的SOC对大气氮沉降增加和降水格局改变的响应机制,本研究基于2017年起在青藏高原东北隅开展的高寒草甸氮添加(10g·m–2·a–1)和降水改变(自然降水±50%)交互试验平台,分析2022−2024年0−40cm土层的SOC、土壤养分及植被生物量的动态变化,以揭示高寒草甸SOC对氮沉降和降水改变的响应过程。结果表明:与无氮添加且无降水改变的对照处理相比,氮添加显著提高地上生物量(AGB)约30%;地下生物量(BGB)主要受土壤深度影响,对降水量变化较为敏感,减雨处理导致30−40cm土层BGB降低35%;氮添加降低0−10cm土壤pH7%,增加该层土壤的SOC和全氮(STN7%~9%;30−40cm土壤SOC和STN普遍呈下降趋势,降幅为2%~4%。氮添加和降水改变通过影响土壤pH而非植被生物量,驱动10−40cm土壤STN及SOC的变化。降水量变化对10−40cm土壤的SOC具有正效应,β为0.08。高寒草甸SOC对氮沉降和降水改变呈“表层聚集深层损失”的响应特征,改变SOC垂直分布格局,并与植物碳输入存在解耦现象。研究结果可为气候变化背景下高寒草甸土壤碳汇功能的评估与预测提供参考。

关键词: 高寒草甸, 植被生物量, 土壤有机碳, 土壤全氮, 土壤pH

Abstract:

Enhancing soil organic carbon (SOC) sequestration capacity is a crucial nature−based solution for mitigating climate change. To elucidate the mechanisms underlying depth−resolved SOC responses to elevated atmospheric nitrogen (N) deposition and altered precipitation regimes, this study utilized a full−factorial experiment combining N addition (10g·m–2·y1) and precipitation manipulation(±50% ambient precipitation) initiated in 2017 in a northeastern Qinghai−Tibet plateau alpine meadow. The dynamics of 0–40cm SOC, soil nutrients and plant biomass from 2022 to 2024 were quantified to reveal SOC responses to changes in nitrogen deposition and precipitation regimes. The results showed that aboveground biomass (AGB) increased significantly by approximately 30% under the N addition treatment compared to the control (CK, no N addition or precipitation change). Belowground biomass (BGB) showed depth−dependent variations and was more sensitive to precipitation change, where 30–40cm BGB was reduced by 35% under the decreased precipitation treatment. N addition decreased surface soil (0–10cm) pH by 7% but increased SOC and soil total nitrogen (STN) by 7%–9% in the same layer. Conversely, subsoil (30–40cm) SOC and STN declined by 2%–4%. N addition and precipitation change indirectly regulated 10–40cm STN and SOC through the soil pH pathway, rather than via changes in vegetation biomass. Specifically, precipitation change showed positive effects on 10–40cm SOC with a β of 0.08. These findings demonstrate a response of SOC with a "surface accumulation and subsurface depletion" pattern, which alters the vertical distribution of SOC and indicates a decoupling from plant−derived carbon inputs. This study provides valuable insights for assessing and projecting the soil carbon sink function of alpine meadows under future climate change scenarios. 

Key words: Alpine meadow, Vegetation biomass, Soil organic carbon, Soil total nitrogen, Soil pH