欢迎访问《生态学杂志》官方网站,今天是

生态学杂志 ›› 2026, Vol. 45 ›› Issue (6): 2032-2042.

• 综合评述 • 上一篇    下一篇

氮沉降对森林土壤呼吸分层效应的差异化影响

房焕英1,王金平1,肖胜生2*,沈芳芳1,廖运华2,3,黄俊杰2,3   

  1. 1江西水利电力大学, 流域生态智能监测与综合治理江西省重点实验室, 南昌 330099; 2江西省水利科学院, 流域水土保持江西省重点实验室, 南昌 330029; 3江西农业大学, 南昌 330045)
  • 出版日期:2026-06-10 发布日期:2026-12-01

Differential impact of nitrogen deposition on the stratified effects of forest soil respiration.

FANG Huanying1, WANG Jinping1, XIAO Shengsheng2*, SHEN Fangfang1, LIAO Yunhua2,3, HUANG Junjie2,3   

  1. (1Jiangxi Key Laboratory for Intelligent Monitoring and Integrated Restoration of Watershed Ecosystem, Jiangxi University of Water Resources and Electric Power, Nanchang 330099, China; 2Jiangxi Key Laboratory of Watershed Soil and Water Conservation, Jiangxi Academy of Water Science and Engineering, Nanchang 330029, China; 3Jiangxi Agricultural University, Nanchang 330045, China).

  • Online:2026-06-10 Published:2026-12-01

摘要: 土壤碳动态的深度分异是导致土壤呼吸对氮沉降响应不确定的关键因素之一。解析氮输入量变化对土壤呼吸垂直分异的影响,有助于深化对全球变化下土壤碳循环适应机制的理解。本文在综述土壤呼吸产生机制及氮沉降变化的基础上,分析了氮沉降增加和减弱对不同深度土壤呼吸的影响,重点探讨了深土层(>30 cm)在土壤CO2通量中的贡献。微生物可利用的氮含量可能是调控深层土壤呼吸的关键,而氮库存量可能主导氮沉降减弱后土壤呼吸的响应趋势,但环境因子间的交互作用增加了其不确定性。未来需系统探究土壤呼吸的垂直分层机制及在氮输入下降情景下的动态阈值,揭示碳-氮-水耦合过程的多因子互作机理。通过整合分层呼吸组分的溯源研究与发展多技术方法,增强模型对深层碳周转的表征能力,为全球变化背景下生态系统碳收支的精准评估提供支撑。


关键词: 氮沉降增加, 氮沉降停止, 土壤呼吸, 土壤剖面, 森林生态系统

Abstract: The depth differentiation in soil carbon dynamics is one of the key factors contributing to the uncertainties in the responses of soil respiration to nitrogen deposition. Analyzing the impact of nitrogen inputs on the vertical differentiation of soil respiration will enhance our understanding of the adaptation mechanisms of soil carbon cycling under global change. We first reviewed the mechanisms underlying soil respiration and changes in atmospheric nitrogen deposition. Then, we examined the effects of both increased and decreased nitrogen deposition on soil respiration at different depths, with a focus on the contribution of nitrogen deposition to soil CO2 flux in deep soil layer (>30 cm). Microbial nitrogen availability played a key role in regulating deep soil respiration, and nitrogen pool size may drive the response of soil respiration after reduced nitrogen deposition, but the interaction between environmental factors increases its uncertainty. Future research should prioritize exploring the vertical stratification mechanisms of soil respiration and its dynamic thresholds under the situation of reduced nitrogen input, as well as disclosing the interactive effects of multiple factors on carbon-nitrogen-water coupling processes. By integrating source partitioning of respiration components across soil layers and advancing multi-technique approaches, model capability for representing deep carbon turnover can be improved, thereby supporting the accurate assessment of ecosystem carbon budget in the context of global change.


Key words: increased nitrogen deposition, cessation of nitrogen deposition, soil respiration, soil profile, forest ecosystem