强酸性红壤风化壳酸缓冲容量的垂直分异特征及主控因素
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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(42477311)和中国科学院南京土壤研究所自主部署项目(ISSASIP2209)资助


Vertical Differentiation Characteristics and Main Controlling Factors of Acid Buffering Capacity in the Strongly Acidic Red Soil Regoliths
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State Key Laboratory of Soil and Sustainable Agriculture,Institute of Soil Science,Chinese Academy of Sciences

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Supported by the National Natural Science Foundation of China (No..42477311) and the Self Deployment Project of the Institute of Soil Science, Chinese Academy of Sciences (No. ISSASIP2209)

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    摘要:

    探究强酸性红壤风化壳的酸缓冲容量及其主控因素,以期为评估地表系统酸缓冲性能和创新酸化改良技术提供科学依据。以江西省鹰潭市余江区孙家农业小流域pH小于5.0的强酸性红壤风化壳为研究对象,该红壤风化壳起源于第四纪红黏土(上层为均质红黏土层,下层为网纹红黏土层),下伏基岩为红砂岩。通过钻孔技术采集了旱地近8 m深的岩土芯样品,样品分为均质红黏土层、网纹红黏土层、风化砂岩层、砂岩基岩层样品,通过风化壳酸缓冲容量(pHBC)及相关理化性质测定,线性和随机森林模型拟合,以及酸缓冲理论分析,系统研究了红壤风化壳不同层次中有机质、机械组成、矿物组成、铁铝氧化物、交换性盐基、交换性酸和pH对pHBC垂直变异的相对贡献。红壤风化壳酸缓冲容量呈现显著的层次分异特征。pHBC在均质红黏土层最高,为2.53 ± 0.41 cmol·kg-1·pH unit1;在网纹红黏土层居中,为1.93 ± 0.59 cmol·kg-1·pH unit-1;在风化砂岩层最低,为1.39 ± 0.22 cmol·kg-1·pH unit-1。均质红黏土层pHBC随深度增加而升高;网纹红黏土层pHBC随深度增加而降低;风化砂岩层pHBC随深度增加而降低,从风化砂岩层过渡至砂岩基岩时,pHBC升高。处于强酸性状态的第四纪红黏土层的交换性盐基离子已基本耗尽,对酸缓冲容量的贡献较低。酸缓冲容量在均质红黏土层主要依赖于晶形氧化铁和有机质的质子化过程,在网纹红黏土层主要依赖于无定形和晶形氧化铝的溶解作用以及无定形和晶形氧化铁的质子化过程,在风化砂岩层主要决定于长石溶解作用和交换性钙镁的阳离子交换作用,在砂岩基岩层碳酸盐溶解发挥了关键作用。强酸性红壤风化壳缓冲机制以铁铝氧化物的质子化和溶解过程为核心,研究结果可为红壤生态系统酸化评估和改良提供理论支持。

    Abstract:

    【Objective】This study aimed to investigate the vertical variation characteristics and controlling factors of acid buffering capacity (pHBC) of strongly acidic red soil regoliths.【Method】The strongly acidic red soil regoliths with pH values less than 5.0 were selected as the study objects, which are developed from Quaternary red clay (including an upper uniform red clay layer and a lower reticulate red clay layer) underlain by sandstone bedrock located at a small agricultural watershed in Yujiang District, Yingtan City, Jiangxi Province. Approximately 8-meter-deep soil-rock core samples were collected from two upland boreholes using drilling, which were classified into four layers, including a uniform red clay layer, reticulate red clay layer, weathered sandstone layer, and sandstone bedrock layer. Regolith pHBC and other related physicochemical properties were measured. Multiple linear regression and random forest modeling as well as acid-base equilibrium theory analysis were used to quantify the relative contributions of regolith organic matter, mechanical compositions, mineral compositions, iron and aluminum oxides, exchangeable base cations, exchangeable acidity, and pH to pHBC variations across different layers.【Result】The red soil regoliths exhibited layer-specific acid buffering characteristics. The regolith pHBC were 2.53 ± 0.41 cmol·kg-1·pH unit-1, 1.93 ± 0.59 cmol·kg-1·pH unit-1, and 1.39 ± 0.22 cmol·kg-1·pH unit-1 in the uniform red clay layer, the reticulate red clay layer, and the weathered sandstone layer, respectively. The regolith pHBC increased with depth in the uniform red clay layer, decreased with depth in the reticulate red clay layer and the weathered sandstone layer, and increased from the weathered sandstone layer to the sandstone bedrock layer. Interestingly, the exchangeable base cations of the Quaternary red clay layer at a strongly acidic state were exhausted and played a limited role in the changes of pHBC. Moreover, the pHBC depended on the protonation process of crystalline iron oxide and organic matter in the uniform red clay layer, the dissolution of amorphous and crystalline aluminum oxides and the protonation of amorphous and crystalline iron oxides in the reticulate red clay layer, and on feldspar dissolution and exchange of exchangeable calcium and magnesium ions in the weathered sandstone layer. Also, the dissolution of carbonates plays a key role in the pHBC in the sandstone bedrock layer.【Conclusion】The acid buffering mechanism in the strongly acidic red soil regoliths primarily centers around the protonation and dissolution processes of iron and aluminum oxides. These research findings provide support for the acidification assessment and improvement of the red soil ecosystems.

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崔子霄,吴华勇,宋效东,杨顺华,张甘霖.强酸性红壤风化壳酸缓冲容量的垂直分异特征及主控因素[J].土壤学报,DOI:10.11766/trxb202503090107,[待发表]
CUI Zixiao, WU Huayong, SONG Xiaodong, YANG Shunhua, ZHANG Ganlin. Vertical Differentiation Characteristics and Main Controlling Factors of Acid Buffering Capacity in the Strongly Acidic Red Soil Regoliths[J]. Acta Pedologica Sinica, DOI:10.11766/trxb202503090107,[In Press]

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  • 收稿日期:2025-03-09
  • 最后修改日期:2025-05-12
  • 录用日期:2025-05-22
  • 在线发布日期: 2025-05-22
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