“7·28”内蒙古大兴安岭北部原始林区特重大雷击火灾后生态服务时空演变规律研究

Study on the spatiotemporal evolution of ecosystem services after the July 28 extraordinarily severe lightning-induced fire in the primeval forest region of northern Daxing'an Mountains, Inner Mongolia

  • 摘要: 为揭示特重大雷击火灾后寒温带原始林区生态系统服务的时空演变规律,以2002年“7·28”内蒙古大兴安岭北部原始林区火灾区为对象,基于2001—2020年多源遥感影像,应用火灾严重度分级、土地利用转移分析、InVEST模型与CASA模型等方法,系统评估灾后生态系统的响应与恢复过程。结果显示:火灾区总面积为182.5 km2,以中高与高火灾严重度为主,空间上呈现围绕高值核心区的圈层分布格局。土地利用变化呈现明显的先退化后恢复特征,2001—2015年森林持续退化为草地,2015年后开始缓慢恢复,且森林退化程度与火灾严重度呈正相关,恢复潜力则随火灾严重度升高而显著降低。各项生态系统服务虽均经历冲击、恢复、趋稳三阶段演变,但恢复轨迹与终点存在显著差异。水源涵养功能对火灾最为敏感,灾后下降超过56%,生境质量抗逆性最强,恢复最为平稳,至2020年,水源涵养与土壤保持功能已恢复并超过灾前水平,归一化植被指数恢复至基准96%以上,而净初级生产力的恢复率仍不足90%,成为唯一尚未恢复至灾前状态的指标。研究表明,火灾严重度是调控灾后生态恢复进程与格局的关键驱动力,低、中低火灾严重度区域生态弹性保持较好,可通过自然过程有效恢复;高、中高火灾严重度区域则因生态系统结构受损严重,自然恢复困难,需实施针对性人工辅助修复。本研究明确了寒温带原始林区特大雷击火灾干扰与生态系统服务恢复的响应关系,研究成果可为我国寒温带林火频发区的火灾分级管控、灾后生态修复方案制定、生态系统服务可持续提升提供科学依据与数据支撑,为寒温带原始林区分级精准修复、生态服务协同提升及区域生态安全屏障建设提供实践指导。

     

    Abstract: To reveal the spatiotemporal evolution patterns of ecosystem services in the cold-temperate primeval forest region after an extraordinarily severe lightning-induced fire, this study focused on the fire-affected area in the primeval forest region of northern Daxing'an Mountains in Inner Mongolia, which was hit by the July 28, 2002 fire. Based on multi-source remote sensing imagery from 2001 to 2020, methods such as fire severity classification, land use transition analysis, and the InVEST and CASA models were employed to systematically evaluate the post-fire ecosystem response and recovery processes. The results indicated that the total fire-affected area was 182.5 km², which was dominated by medium-high and high fire severity levels, and spatially exhibited a concentric distribution pattern around high-severity cores. Land use changes showed a clear two-phase pattern of initial degradation followed by recovery: forest continuously degraded into grassland from 2001 to 2015, with slow recovery beginning after 2015. The depth of forest degradation was positively correlated with fire severity, while recovery potential decreased significantly with increasing fire severity. Although all types of ecosystem services underwent a three-phase evolution of impact, recovery, and stabilization, their recovery trajectories and endpoints differed markedly. Water conservation function was the most sensitive to fire, declining by over 56% after the event, while habitat quality exhibited the strongest resilience and the most stable recovery. By 2020, water conservation and soil retention functions had recovered to levels exceeding pre-fire baselines, and Normalized Difference Vegetation Index (NDVI) had recovered to over 96% of the baseline. In contrast, Net Primary Production (NPP) remained the only indicator not restored to pre-fire conditions, with a recovery rate below 90%. This study confirms that fire severity is the key driver governing the post-fire ecological recovery process and pattern. Areas with low and medium-low severity maintain better ecological resilience and can recover effectively through natural processes. In contrast, areas with high and medium-high severity, due to severe damage to ecosystem structure, face difficulties in natural recovery and require targeted artificial assistance for restoration. This study clarifies the response relationship between extraordinarily severe lightning-induced fire disturbance and ecosystem service restoration in cold-temperate primeval forest regions. The research results can provide a scientific basis and data support for hierarchical fire management, formulation of post-fire ecological restoration schemes, and sustainable improvement of ecosystem services in fire-prone forest areas of cold-temperate zones in China, as well as practical guidance for hierarchical precision restoration, synergistic enhancement of ecological services, and the construction of regional ecological security barriers in cold-temperate primeval forest areas.

     

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