鄂西南山区母岩类型对土壤团聚体稳定性及有机碳储量的影响

Effects of Parent Rock Types on Soil Aggregate Stability and Organic Carbon Storage in the Mountainous Areas of Southwestern Hubei Province

  • 摘要:
    目的 解析不同母岩发育土壤的团聚体组分和土壤有机碳含量之间的关系,揭示母岩类型对鄂西南山区土壤团聚体稳定性及有机碳储量的影响机制。
    方法 以鄂西南山区四种典型母岩(石灰岩、砾岩、砂岩和页岩)发育的林地黄壤为研究对象,通过野外采样与室内分析,测定土壤团聚体组成、稳定性指标及土壤有机碳含量与储量。
    结果 四种母岩发育形成的土壤团聚体组分均以直径 < 0.25 mm团聚体为主,占团聚体总量的37.05%。页岩发育的土壤团聚体稳定性最佳,砾岩最差,页岩发育泥质土壤的团聚体平均重量直径(MWD)和几何平均直径(GMD)显著高于砾岩发育的土壤,增幅分别为44.35%和36.73%。砾岩发育土壤的可蚀性因子(K)最高,而石灰岩和页岩发育的土壤团聚体比例(AR)显著高于其他母岩发育的土壤(P < 0.05)。页岩发育的土壤有机碳含量最高,达13.86 g kg−1,其有机碳储量显著优于砾岩和砂岩发育的土壤,分别提升了33.90%和61.44%。相关性及偏最小二乘路径模型(PLS-PM)分析表明,土壤性质和团聚体特征是影响有机碳储量的主要因素,所有因子对有机碳储量的解释比(R2)达0.87,证实母岩通过调控土壤团聚体粒径分布、理化性质及有机碳含量,最终影响土壤有机碳储量。
    结论 母岩是控制鄂西南山区土壤团聚体稳定性和有机碳储量的关键因素之一,主要通过影响土壤性质、团聚体粒径组成等因素进而控制土壤有机碳储量。

     

    Abstract:
    Objective The aims were to analyze the relationship between soil aggregate fractions and soil organic carbon (SOC) contents in soils developed from different parent rocks, and to reveal the mechanisms by which parent rock types affect soil aggregate stability and SOC storage in the mountainous areas of southwestern Hubei Province.
    Method The yellow soil developed from four typical parent rocks (limestone, conglomerate, sandstone, and shale) in the southwestern mountainous area of Hubei Province was taken as the research object. Through field sampling and indoor analysis, the composition of soil aggregates, stability indicators, and SOC content and storage were determined. Combined with multivariate statistical models, the relationship between the stability level of soil aggregates and the distribution characteristics of SOC in soils with different parent rock developments was analyzed.
    Result The soils developed from four types of parent rocks were dominated by <0.25 mm aggregates, with an average proportion of 37.05%. Among them, the soil aggregates developed by shale had the best stability, while those developed by conglomerate had the worst. The mean weight diameter (MWD) and geometric mean diameter (GMD) of aggregates in shale-derived soil were significantly higher than those in conglomerate-derived soil, with the increases of 44.35% and 36.73%. Conglomerate-derived soil had the highest erodibility factor (K), whereas limestone- and shale-derived soils demonstrated significantly higher aggregate ratios (AR) compared to other parent materials (P < 0.05). Shale-derived soil contained the highest SOC content (13.86 g kg−1), with SOC stocks significantly exceeding those of conglomerate- and sandstone-derived soils by 33.90% and 61.44%. Correlation analysis combined with partial least squares path modeling (PLS-PM) revealed that soil properties and aggregate characteristics were primary factors influencing SOC storage. The explanatory ratio (R2) of all factors for SOC is 0.87, confirming that parent rock material significantly affects SOC storage through its regulatory effects on aggregate size distribution, physicochemical properties and SOC content.
    Conclusion The parent rock is one of the key factors controlling the stability of soil aggregates and SOC storage in the southwestern mountainous areas of Hubei Province. It mainly affects SOC storage by regulating changes in soil properties, aggregate distribution characteristics, and other factors.

     

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