欢迎访问《应用生态学报》官方网站,今天是

应用生态学报 ›› 2026, Vol. 37 ›› Issue (8): 2813-2821.doi: 10.13287/j.1001-9332.202608.001

• 综合评述 • 上一篇    下一篇

三北地区人工林退化的演变过程与驱动机制研究进展

金宇曦1, 肖辉杰1,2,3*, 王洲1, 陈思贝1, 罗成威1   

  1. 1北京林业大学水土保持学院, 北京 100083;
    2北京林业大学林业生态工程教育部工程研究中心, 北京 100083;
    3北京林业大学水土保持国家林业和草原局重点实验室, 北京 100083
  • 收稿日期:2026-02-11 修回日期:2026-05-18 出版日期:2026-08-18 发布日期:2027-02-18
  • 通讯作者: *E-mail: herr_xiao@hotmail.com
  • 作者简介:金宇曦, 女, 1998年生, 硕士研究生。主要从事农田防护林研究。E-mail: xxxx041500@163.com
  • 基金资助:
    国家重点研发计划政府间合作科技创新专项(2023YFE0121800)、国家重点研发计划项目(2023YFF1304204,2023YFE0121800)和国家自然科学基金项目(32371961)

Spatial correlation network characteristics and influencing factors of urban ecological vulnerability in the Yellow River Basin, China

JIN Yuxi1, XIAO Huijie1,2,3*, WANG Zhou1, CHEN Sibei1, LUO Chengwei1   

  1. 1School of Soil and Water Conservation, Beijing Forestry University, Beijing 100083, China;
    2Engineering Research Center of Forestry Ecological Engineering, Ministry of Education, Beijing Forestry University, Beijing 100083, China;
    3National Forestry and Grassland Administration Key Laboratory of Soil and Water Conservation, Beijing Forestry University, Beijing 100083, China
  • Received:2026-02-11 Revised:2026-05-18 Online:2026-08-18 Published:2027-02-18

摘要: 在干旱与半干旱背景下,三北地区人工林退化已成为制约区域生态系统稳定性和服务功能持续提升的关键问题。本文综述了三北地区人工林退化的主要表现特征及其演变过程。人工林退化通常表现为林木生理功能受限,并伴随个体生长滞缓、林分结构失稳及生态系统功能下降。基于生态学与树木生理学相结合的视角,重点阐明了土壤水分胁迫与养分限制等生态因子如何通过诱发水力障碍、碳饥饿及水-碳耦合失衡,从而驱动人工林退化的内在机制,并指出不同水分利用策略树种在干旱胁迫下表现出差异化退化路径与风险特征。目前,关于主导驱动因子判识、关键生理阈值量化及多尺度过程耦合等方面的研究仍存在不足。未来应结合水分利用效率等综合指标,构建面向不同树种与区域特征的人工林退化判识与风险预警框架。

关键词: 人工林退化, 生态-生理机制, 水-碳耦合, 水分利用效率, 干旱胁迫

Abstract: Against the backdrop of arid and semi-arid climates, plantation degradation in the Three-North region of China has emerged as a critical constraint on regional ecosystem stability and the sustained provision of ecosystem services. We synthesized the major manifestations and plantation degradation in the Three-North region. Plantation degradation is commonly characterized by tree physiological dysfunction, accompanied by growth decline at indivi-dual and stand scales, stand structural instability, and a decline in ecosystem functions. From an integrated ecological and tree physiological perspective, we highlighted how key ecological drivers, including water stress, nutrient limitation, and tree species-site mismatch under drought stress, could induce hydraulic failure, carbon starvation, and imbalance in water-carbon coupling, thereby driving the transition of plantations from physiological decline to structural and functional degradation. Moreover, we emphasized that tree species with different water-use strategies exhibited distinct degradation pathways and risk profiles under drought stress, which were jointly regulated by hydraulic safety margins and carbon balance constraints. Despite growing attention, substantial gaps remained in identifying dominant driving factors, quantifying key physiological thresholds, and elucidating cross-scale coupling processes. Future studies should integrate multi-scale indicators, such as water use efficiency, to develop species- and region-specific diagnostic and early-warning frameworks for plantation degradation.

Key words: plantation degradation, eco-physiological mechanism, water-carbon coupling, water-use efficiency, drought stress