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生态学杂志 ›› 2026, Vol. 45 ›› Issue (6): 1780-1788.doi: 10.13292/j.1000-4890.202606.027

• 研究报告 • 上一篇    下一篇

亚热带次生林土壤有机碳储量及其稳定性随演替阶段的变化趋势

彭超1,3,徐艳阳1,秦易1,张芸1,2,张扬1,2,吴婷1,2,毛瑢1,2*   

  1. 1江西农业大学林学院, 南昌 330045; 2江西马头山森林生态系统定位观测研究站, 江西资溪 335302; 3井冈山大学生命科学学院生物入侵与生物安全江西省重点实验室, 江西吉安 343009)
  • 出版日期:2026-06-10 发布日期:2026-12-01

Variations of soil organic carbon stock and its stability along the succession stage in subtropical secondary forests.

PENG Chao1,3, XU Yanyang1, QIN Yi1, ZHANG Yun1,2, ZHANG Yang1,2, WU Ting1,2, MAO Rong1,2*   

  1. (1College of Forestry, Jiangxi Agricultural University, Nanchang 330045, China; 2Jiangxi Matoushan Observation and Research Station of Forest Ecosystem, Zixi 335302, Jiangxi, China; 3Jiangxi Provincial Key Laboratory of Biological Invasions and Biosafety, School of Life Sciences, Jinggangshan University, Ji’an 343009, Jiangxi, China).

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

摘要: 森林土壤有机碳在固定大气二氧化碳和缓解全球气候变化中发挥着关键作用。然而,亚热带森林演替如何影响土壤有机碳组分及其稳定性尚不清楚。为此,在江西马头山沿演替序列选取针叶林、针阔混交林、常绿落叶阔叶混交林和常绿阔叶林为研究对象,采集腐殖质层、0~10和10~30 cm土壤,分析土壤有机碳、颗粒有机碳(POC)、矿物结合有机碳(MAOC)含量和土壤理化性质的变化规律,揭示森林演替对土壤有机碳储量和稳定性的影响及其调控因素。结果表明,土壤有机碳储量随森林演替呈现增加的趋势,其中阔叶混交林(5065 g C·m-2)和常绿阔叶林(5940 g C·m-2)土壤有机碳储量显著高于针叶林(2900 g C·m-2)和针阔混交林(3132 g C·m-2)。随着森林演替,POC浓度在所有土层呈现升高的趋势,而MAOC浓度在腐殖质层和0~10 cm土壤逐步增加,但在10~30 cm土壤先降低后增加。所有土层POC占有机碳的比例随森林演替增加,而MAOC占有机碳的比例则呈现降低的趋势,导致POC∶MAOC升高。与针叶林相比,针阔混交林、阔叶混交林和常绿阔叶林土壤POC∶MAOC平均增加了87%、245%和360%。在腐殖质层,有机碳和POC浓度主要受有效磷的影响,而MAOC浓度受细根生物量的影响;在0~10 cm土壤,有机碳和POC浓度主要受总氮浓度和碳氮比的影响,而MAOC浓度则主要取决于pH;在10~30 cm土壤,有机碳及其组分主要受总氮浓度和碳氮比的影响。综上,亚热带森林演替促进土壤有机碳积累,但增加了颗粒有机碳的相对比例,导致土壤有机碳稳定性降低。该变化趋势主要受森林演替过程中植物细根生物量和土壤养分(如氮和磷)有效性的调控。


关键词: 颗粒有机碳, 矿物结合有机碳, 森林演替, 土壤有机碳组分, 亚热带森林

Abstract: Soil organic carbon (SOC) plays a critical role in sequestering atmospheric carbon dioxide and mitigating global climate change in forests. However, how forest succession affects soil organic carbon fractions and their stability in subtropical forests remains unclear. To address this knowledge gap, we examined the effects of forest succession on soil organic carbon stock and stability and their regulatory factors along the successional gradient of coniferous forest, coniferous and broad-leaved mixed forest, evergreen and deciduous broad-leaved mixed forest, and evergreen broad-leaved forest in Matoushan, Jiangxi Province. Soil samples were collected from the humus layer, 0-10 cm soil layer, and 10-30 cm soil layer. The variations of soil organic carbon, particulate organic carbon (POC), mineral-associated organic carbon (MAOC) contents, and soil physical and chemical properties were analyzed. The results showed that SOC stock increased along forest succession stages. Broad-leaved mixed forests (5065 g C·m-2) and evergreen broad-leaved forests (5940 g C·m-2) had significantly greater SOC stock than coniferous forests (2900 g C·m-2) and coniferous and broad-leaved mixed forests (3132 g C·m-2). As forest succession proceeded, POC concentration increased across all soil layers, whereas MAOC concentration gradually increased in the humus and 0-10 cm soil layers but initially declined and then increased in the 10-30 cm soil layer. The proportion of POC to SOC generally increased with forest succession, but the proportion of MAOC to SOC declined, resulting in elevated POC∶MAOC ratio. Compared to coniferous forests, the average POC∶MAOC ratio increased by 87%, 245%, and 360% in the coniferous and broad-leaved mixed forests, broad-leaved mixed forests, and evergreen broad-leaved forests, respectively. In the humus layer, soil organic C and POC concentrations were primarily influenced by available phosphorus, while MAOC concentration was influenced by fine root biomass. In the 0-10 cm soil layer, SOC and POC concentrations were mainly affected by soil total nitrogen (N) concentration and C∶N ratio, whereas MAOC concentration was mainly regulated by pH. In the 10-30 cm soil layer, organic C and its fractions were predominantly influenced by total N concentration and C∶N ratio. These findings suggest that community succession enhances SOC accumulation but reduces SOC stability by increasing the proportion of POC fraction in subtropical forests. These change trends are primarily modulated by fine root biomass and soil nutrient (i.e., N and phosphorus) availability during forest succession.


Key words: particulate organic carbon, mineral-associated organic carbon, forest succession, soil organic carbon fraction, subtropical forest