降水与母质共同调控中国北方土壤碳酸钙空间分异
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土壤与农业可持续发展全国重点实验室(中国科学院南京土壤研究所)

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国家自然科学基金项目(42130715)、国家重点研发计划项目(2023YFD1500101)和中国科学院南京土壤研究所“十四五”自主部署项目(ISSAS2404)资助


Precipitation and Parent Material Co-regulate the Spatial Differentiation of Soil Calcium Carbonate in Northern China
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State Key Laboratory of Soil and Sustainable Agriculture, Institute of Soil Science, Chinese Academy of Sciences, Nanjing

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Supported by the National Natural Science Foundation of China (No. 42130715), the National Key Research and Development Program of China (No. 2023YFD1500101), and the Independent Deployment Project of the 14th Five-Year Plan, Institute of Soil Science, Chinese Academy of Sciences (No. ISSAS2404)

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    摘要:

    土壤无机碳是干旱与半干旱区陆地碳库的重要组成部分,其积累与分异机制深刻影响区域碳循环过程。气候是控制土壤碳酸盐积累的主导因素,但土壤碳酸盐的分布通常还受成土母质等非气候因素的影响。为阐明降水与母质在区域尺度上如何协同调控土壤碳酸钙的空间分异,沿中国东北平原至内蒙古高原的降水梯度带,系统分析了13个典型土壤剖面的碳酸钙含量、富集层深度及其主控因子。结果表明,降水主导了碳酸钙垂直分异的宏观格局,富集层深度与年均降水量呈显著正相关(R2=0.43, P<0.05);而碳酸钙积累总量则由成土母质的钙源丰度控制,与降水量的关联性不显著。粒度特征分析进一步揭示,在母质均一剖面中,碳酸钙淀积深度对降水的响应极灵敏(R2=0.97, P<0.05);但在母质不连续或质地突变的剖面中,水分运移受物理界面阻隔产生“悬停”或“滞留”效应,导致淀积层位显著偏离降水预测值。研究提出了土壤钙积过程受“降水调控淀积深度,母质决定钙源供给,质地调节溶质运移”的协同调控机制,揭示了干旱半干旱区土壤碳酸盐多因子互作过程。

    Abstract:

    【Objective】Soil inorganic carbon is a vital component of the terrestrial carbon pool in arid and semi-arid regions, and its accumulation and differentiation mechanisms profoundly influence regional carbon cycling processes. Climate is the dominant factor controlling soil carbonate accumulation, but the distribution of soil carbonates is also often affected by non-climatic factors such as parent material. 【Method】To elucidate how precipitation and parent material synergistically regulate the spatial variation of soil calcium carbonate (CaCO3) at a regional scale, this study systematically analyzed the CaCO3 content, depth of the enriched layer, and their main controlling factors in 13 typical soil profiles along the precipitation gradient from the Northeast China Plain to the Inner Mongolia Plateau. ?【Result】The results showed that precipitation governed the macro-scale vertical differentiation of CaCO3, with the depth of the enriched layer exhibiting a significant positive correlation with mean annual precipitation (R2 = 0.43, P < 0.05). The total accumulation of CaCO3 was controlled by the calcium source abundance of the parent material and showed no significant correlation with precipitation. Particle size analysis further revealed that, in profiles with homogeneous parent material, the deposition depth of CaCO3 responded very sensitively to precipitation (R2 = 0.97, P < 0.05). However, in profiles with discontinuous parent material or abrupt textural changes, water movement was obstructed by physical interfaces, creating a “perching” or “retention” effect, which caused the depositional layer to deviate significantly from the value predicted by precipitation alone. ?【Conclusion】This study proposes a synergistic regulatory mechanism for the soil calcification process: precipitation regulates the deposition depth, parent material determines the calcium source supply, and soil texture modulates solute transport. This mechanism reveals the multi-factor interaction processes controlling soil carbonates in arid and semi-arid regions.

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苗子怡,杨飞,文慧颖,宋效东,张甘霖.降水与母质共同调控中国北方土壤碳酸钙空间分异[J].土壤学报,DOI:10.11766/trxb202602020077,[待发表]
miaoziyi, yangfei, wenhuiying, songxiaodong, zhangganlin. Precipitation and Parent Material Co-regulate the Spatial Differentiation of Soil Calcium Carbonate in Northern China[J]. Acta Pedologica Sinica, DOI:10.11766/trxb202602020077,[In Press]

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  • 收稿日期:2026-02-02
  • 最后修改日期:2026-06-26
  • 录用日期:2026-07-21
  • 在线发布日期: 2026-08-25
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