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    土壤侵蚀与碳循环研究进展与挑战

    Erosion-driven soil carbon cycles: from "source-sink controversy" to "process quantification"

    • 摘要: 目的土壤侵蚀深刻影响了全球土壤碳循环过程,但其中复杂的物理过程与生物地球化学耦合机理仍是当前研究的难点。本文旨在梳理侵蚀驱动下土壤碳动态研究进展,探讨未来发展方向,以期为深化土壤碳循环理论及服务国家“双碳”战略提供科学支撑。方法通过国内外核心文献的剖析,对侵蚀驱动下土壤碳循环的过程、机制与预测模型进行了系统评述。结果土壤侵蚀的“源汇”属性存在显著的时空异质性与依赖性,推动该领域由属性争论迈向全链条时空过程的量化。其中,宏观物理输移与微观生化周转的深度耦合是全过程量化评估的前提,但二者交互作用的定量化机制至今尚未厘清,已成为制约模型精准预测侵蚀驱动下土壤碳动态的核心瓶颈。结论针对当前研究存在的时空尺度割裂、深层土壤碳动态不明以及微生物功能“黑箱”等挑战,亟待构建全时空尺度的研究框架,研发下一代集“水文过程-泥沙运移-生化反应”于一体的耦合模型。

       

      Abstract: Objective As a critical driver of global biogeochemical cycles, soil erosion profoundly perturbs the terrestrial carbon reservoir. However, the intricate coupling mechanisms between macroscopic physical transport and microscopic biogeochemical turnover remain a severe challenge in contemporary earth sciences. This review aims to systematically synthesize the research progress of erosion-driven soil carbon dynamics, tracking its evolutionary trajectory from historical, qualitative "source-sink" controversies toward modern, full-chain process quantification. By exploring future development directions, this study seeks to deepen modern terrestrial carbon cycle theories, thereby providing process-based scientific support for regional carbon budget accounting frameworks and successfully serving national dual-carbon strategic goals. Methods Adopting a spatiotemporal integrated and landscape-continuum perspective, this study conducts a comprehensive and systematic literature review of core publications from both domestic and international domains. The screening process focused on historical milestones, conceptual frameworks, and cutting-edge advances regarding erosion-carbon interactions. The retrieved literature was systematically evaluated, categorized, and synthesized across three highly interconnected thematic dimensions: charting the historical paradigm shifts of carbon dynamics, integrating the processes of macroscopic physical co-transport, and decoding microscopic biogeochemical response mechanisms. Furthermore, existing mathematical assessment frameworks and numerical simulation models were critically reviewed to diagnose their cross-scale prediction and evaluation capabilities. Results The analysis yields three critical insights regarding erosion-driven carbon cycling. First, the "source-sink" attributes of soil erosion exhibit pronounced spatiotemporal heterogeneity and scale-dependency. At localized, small-scale domains, rapid mechanical disruption dominates, while at catchment scales, dynamic topsoil replacement and sedimentary burial counterbalance carbon losses. This intricate dependency has successfully driven the entire research paradigm to shift from historical qualitative attribute controversies toward the rigorous quantification of full-chain spatiotemporal processes across complex landscape continuums. Second, the deep integration and seamless coupling of macroscopic physical transport processes and micro-scale biogeochemical turnover constitute the absolute and indispensable prerequisite for achieving accurate full-process quantitative assessments. Quantifying how physical forces regulate carbon dynamics requires a holistic integration of macro-scale dynamics—specifically soil aggregate detachment, horizontal runoff transport, and depositional burial—with micro-scale biochemical processes, including microbial heterotrophic respiration, organic matter homeostasis, and enzymatic mineralization pathways. Third, despite its fundamental importance, the interactive quantitative mechanisms governing the interface between physical transport and biochemical responses have not yet been fully elucidated or mathematically formalized. Current scientific frameworks severely lack explicit process-based functions capable of directly linking physical energy inputs, such as rainfall kinetic energy and runoff shear stress, with alterations in biogeochemical reaction rates. Consequently, this deep dislocation between macroscopic physical transport and microscopic biogeochemical mechanisms has emerged as the core bottleneck that strictly restricts existing numerical prediction models—including empirical equations, distributed hydrological frameworks, and large-scale earth system models—from precisely predicting and simulating the dynamic and non-linear spatiotemporal behaviors of erosion-driven soil organic carbon dynamics. Conclusions To structurally resolve current research bottlenecks regarding spatiotemporal scale fragmentation, unknown deep-soil carbon dynamics, and the microbial functional "black box", this review successfully outlines a full-spatiotemporal research framework. It strongly urges developing next-generation coupled numerical models that seamlessly integrate hydrology, sediment transport, and biochemical reactions to answer the objective. Keywords: soil erosion; lateral transport; microbial mechanisms; physical-biochemical coupling; coupled models.

       

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