• ISSN 2097-1893
    • CN 10-1855/P

    地表过程与构造作用的耦合模拟:进展与展望

    Coupled modeling of surface and tectonic processes: progress and perspectives

    • 摘要: 地表是固体圈层与大气、水圈之间的分界面,它既是人类赖以生存的关键界面,也是构造活动、气候变化与地表过程相互作用的重要场所. 侵蚀、沉积及沉积物输运等地表过程不仅塑造了地球表面,还可通过质量再分配、地形负载变化及热结构调整等机制,对地壳构造变形产生反馈. 因此,地表过程与构造作用存在着密不可分的联系. 近年来,地表过程与深部动力学之间的耦合关系,已成为地球系统科学领域的前沿和热点研究方向之一. 我们围绕地表过程与构造作用的耦合机制,从定量模拟的角度,对地表过程-岩石圈耦合研究进行系统梳理. 首先,从地表过程控制方程出发,总结河流侵蚀、坡面扩散、沉积物输运及负载均衡等主要过程的物理基础与数值实现方法,并比较不同复杂度地貌演化模型在过程描述、空间尺度及计算效率等方面的特点. 其次,从侵蚀卸载、沉积加载、应力再分配、热覆盖效应以及沉积物物性变化等方面,归纳地表过程影响岩石圈热-力学结构的主要反馈机制,阐明地表过程不仅响应构造活动,同时也能够通过多种途径反作用于深部动力学过程. 在此基础上,系统梳理构造-地表过程耦合数值模型的发展历程,将现有研究划分为仅地貌演化模型、仅构造动力学模型、单向耦合模型和双向耦合模型四类,比较不同模型在反馈机制表达、圈层相互作用刻画以及计算实现方式上的差异,揭示了构造作用与地表过程由单向响应向双向反馈发展的研究趋势. 总体来看,构造-地表过程耦合模拟正由简化二维模型向三维、多过程协同及多圈层耦合方向发展. 现有模型仍主要建立在以河流侵蚀为核心的地貌演化框架之上,对沉积过程、冰川作用、风化作用及撞击过程等地表过程模拟演化仍旧薄弱,多种反馈机制之间的相互作用机理仍不清楚. 随着数值计算能力与算法的发展,未来研究需在统一物理框架下,结合多源观测数据的约束,开展地表过程与岩石圈动力学的耦合模拟,推动地球与类地行星多圈层耦合研究的发展.

       

      Abstract: The Earth's surface forms the interface between the solid Earth, atmosphere, and hydrosphere, serving not only as the fundamental environment for human activities but also as a key zone where tectonic processes, climate change, and surface processes interact. Surface processes, including erosion, sedimentation, and sediment transport, not only shape topography but also influence crustal deformation and lithospheric evolution through mass redistribution, topographic loading and unloading, and thermal structure modifications. Consequently, the coupling between surface processes and deep Earth dynamics has become a major frontier in Earth system science. This review provides a systematic overview of surface process–lithosphere coupling from the perspective of quantitative numerical modeling. We first summarize the governing equations and numerical implementations of major surface processes, including fluvial incision, hillslope diffusion, sediment transport, and isostatic adjustment, and compare geomorphic models with different levels of complexity in terms of process representation, spatial scale, and computational efficiency. We then synthesize the principal feedback mechanisms through which surface processes influence the thermo-mechanical evolution of the lithosphere, including erosional unloading, sedimentary loading, stress redistribution, thermal blanketing, and sediment property variations. These mechanisms demonstrate that surface processes are not merely passive responses to tectonic forcing but can actively modify deep geodynamic processes through multiple feedback pathways. Furthermore, we review the development of coupled tectonic–surface process models and classify existing studies into four categories: landscape evolution models, geodynamic models, one-way coupled models, and two-way coupled models. By comparing their representations of feedback mechanisms, interactions between surface and deep Earth processes, and numerical coupling strategies, we highlight the evolution of the field from unidirectional forcing frameworks toward fully coupled two-way feedback systems. Recent developments indicate a transition from simplified two-dimensional approaches to three-dimensional, multi-process, and Earth system coupling. Despite substantial progress, current models remain largely based on fluvial-dominated landscape evolution frameworks. The integrated representation of sedimentary processes, glacial dynamics, weathering, impact-related processes, and their interactions remains limited, and a unified physical framework capable of consistently describing multiple feedback mechanisms is still lacking. These limitations constrain the application of coupled models to long-term Earth system evolution and to planetary environments such as Mars and other terrestrial planets. Future advances will require tighter coupling between surface processes and lithospheric dynamics within unified numerical frameworks, together with stronger constraints from multi-source observations and planetary analog studies, to improve model robustness, testability, and predictive capability. Such efforts will provide a quantitative framework into the co-evolution of surface and deep Earth systems on both Earth and planetary scales.

       

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