淤地坝坝地有机碳空间分布及其对流域土地利用的响应
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1.中国科学院水土保持与生态环境研究中心;2.西北农林科技大学水土保持科学与工程学院

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S157

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国家自然科学基金项目(面上项目,重点项目,重大项目):国家自然科学基金黄河水科学联合研究基金课题:黄土高原沟道水土保持措施阈值与布局(No.U2243212)


Spatial distribution of organic carbon in check-dams and its response to land use in the watersheds
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    摘要:

    [目的]淤地坝以直接拦截泥沙的方式治理水土流失,显著改变了土壤有机碳(SOC)的横向迁移过程,探究坝地内SOC的空间分布及流域土地利用对坝地浅土层(0-200cm)内SOC分布的影响,可为淤地坝建设与流域生态环境协同发展提供科学依据。[方法]本文以岔巴沟流域内3个土地利用类型差异较大(草地、坡耕地、梯田面积占比不同)的小流域为对象,采用遥感解译、野外采样与室内测试相结合的方法,研究了坝地SOC空间分布特征及坝地表土层SOC对土地利用的响应关系。 [结果](1)在垂直方向上,SOC在表层土(0-20cm)含量最高,并随土层深度增加快速降低,深层SOC含量变化较小,在3.5 g/kg上下浮动;(2)在顺水流方向上,因土壤侵蚀沉积特征等影响,SOC在坝地中、后段含量较高;在平行坝体方向上,两侧含量较高。(3)流域内梯田占比较高的B淤地坝,坝地SOC均值(0.44 g/kg)显著高于A淤地坝坝地(0.39 g/kg)和C淤地坝坝地(0.35 g/kg)。(4)流域内梯田的SOC最高,同时梯田建设影响了侵蚀泥沙的土壤粒径,从而使得流域内梯田占比与坝地表土层SOC呈显著正相关关系。草地表层SOC碳含量较低,使得坝地地表SOC含量与草地呈负相关关系。坡耕地SOC密度与坝地地表的SOC含量呈正相关关系,但由于坡耕地面积较小,其占比与坝地地表SOC无明显相关性。[结论]受土壤侵蚀、SOC来源和矿化特征影响,坝地表层土SOC最高,随土层深度增加快速降低并趋于稳定。梯田地类内的高SOC含量水平及较细颗粒的侵蚀土粒特征,可能导致了占比最高的B淤地坝坝地内SOC含量最高。本文揭示了半干旱区坝控小流域内SOC的空间分布特征,同时也探明了流域内梯田建设对坝地内表土层(0-200cm)SOC的正向效应。

    Abstract:

    [Purpose] Check-dams are used to directly intercept sediment and control soil erosion, significantly changing the lateral migration process of soil organic carbon (SOC). The spatial distribution of SOC in the dam and the impact of watershed land use on SOC distribution in the dam are explored, which can provide scientific basis for the coordinated development of check-dam construction and watershed ecological environment. [Method] This article focuses on three small watersheds with significant differences in the proportion of grassland, sloping farmland, and terraced land use types in the Chabagou catchment. A combination of remote sensing interpretation, field sampling, and indoor testing was used to study the spatial distribution characteristics of soil organic carbon (SOC) in dams and their response to land use. [Result] (1) In the vertical direction, SOC content is highest in the surface soil (0-20cm) and rapidly decreases with increasing soil depth. The variation of SOC content in the deep layer is relatively small, fluctuating around 3.5 g/kg; (2) In the downstream direction, due to the influence of soil erosion and sedimentation characteristics, the content of SOC is relatively high in the middle and later stages of the dams; In the direction parallel to the dam, the content on both sides is relatively high. (3) The B check-dam with a high proportion of terraced fields in the watershed has a significantly higher mean SOC (0.44 g/kg) than the A check-dam (0.39 g/kg) and C check-dam (0.35 g/kg). (4) The SOC of terraced fields in the watershed is the highest, and the construction of terraced fields affects the soil particle size of eroded sediment, resulting in a significant positive correlation between the proportion of terraced fields in the watershed and the SOC of the soil layer on the dam surface. The surface SOC carbon content of the grassland is relatively low, resulting in a negative correlation between the surface SOC content of the dams and the grassland. The SOC density of sloping farmland is positively correlated with the SOC content on the surface of the dams, but due to the small area of sloping farmland, its proportion is not significantly correlated with the SOC content on the surface of the dams. [Conclusion] Due to soil erosion, SOC sources, and mineralization characteristics, the soil SOC in the surface layer of the dam is the highest, which rapidly decreases and tends to stabilize with increasing soil depth. The high level of SOC and the erosion characteristics of finer particles in terraced land may lead to the highest SOC content in the B check-dam site, which has the highest proportion. This article reveals the spatial distribution characteristics of SOC in dam controlled small watersheds in semi-arid areas, and also explores the positive effect of terrace construction in the watershed on SOC in the surface soil layer (0-200cm) of the dam land.

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  • 收稿日期:2024-02-29
  • 最后修改日期:2024-04-19
  • 录用日期:2024-04-19
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