ISSN 1009-6248CN 61-1149/P 双月刊

主管单位:中国地质调查局

主办单位:中国地质调查局西安地质调查中心
中国地质学会

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    基于像元三分模型的干旱半干旱矿区植被覆盖动态监测:以陕北某煤矿为例

    Dynamic Monitoring of Vegetation Coverage in Arid and Semi-Arid Mining Areas Based on the Pixel Dichotomy Model: A Case Study of a Coal Mine in Northern Shaanxi

    • 摘要: 为突破干旱半干旱区矿区植被组分精细化监测的瓶颈,深入理解矿区生态修复工程对生态系统结构功能的影响机制,本研究以陕北典型煤矿区为例,基于2015-2024年生长旺季(7-8月)的Sentinel-2(10m)与Landsat8(30m)卫星影像数据,结合NDVI-DFI(归一化植被指数-干枯燃料指数)像元三分模型反演2015-2024年矿区光合植被、非光合植被、裸土的覆盖度,并综合运用Sen’s斜率估计与Mann-Kendall趋势检验方法,从像元尺度系统分析了十年间各组分覆盖度的时空变化特点及不同生态修复工程区差异。结果表明:研究区以非光合植被(枯落物、干草等)为主导,而光合植被的高覆盖斑块则显著集中于水分条件较好的沟谷区域,其分布受地形调控;矿区的生态修复治理区内光合植被覆盖度呈现积极改善趋势,其中,2015年治理修复区生态系统表现出光合植被持续增加、非光合植被逐渐降低的演替趋势;以“剥挖−回填−复垦”为核心的系统性治理工程,通过地貌重塑与土壤重构,为光合植被演替奠定了良好的基础。以“硬化固坡”为主导的工程化治理模式,快速实现了地质灾害防治与地貌稳定,但其形成的大面积硬质下垫面压缩了自然植被的恢复空间。本研究验证了像元三分模型在干旱半干旱矿区复杂地表环境下进行植被组分动态精细化监测的适用性与有效性,该方法克服了传统指数监测不足的局限,清晰揭示修复过程中光合植被与非光合植被演替规律。为科学评估矿区生态修复成效提供了可量化、可追溯的技术方案与详实的数据支撑。研究结论对于优化矿区协同修复模式、制定差异化的适应性管护策略、提升矿区生态系统固碳增汇能力与服务功能具有重要意义。

       

      Abstract: To tackle the tricky problem of closely tracking different vegetation types in semi-dry mining areas and study the influencing mechanism of restoration projects on the ecosystem’s structure and function, this study, taking a typical coal mine area in northern Shaanxi as a example, figured out the coverage of three things: greening vegetation, browning vegetation, and bare soil over those ten years by using Sentinel-2 (10m resolution) and Landsat-8 (30m) satellite images from the growing season (July-August) between 2015 and 2024. We used Sen’s slope estimation and Mann-Kendall trend tests to map out how each of these three changed over time and space, even comparing different restoration zones at the pixel level. We found that the area is mostly covered by browning vegetatio. The patches of lots of greening vegetation are clearly clustered in valleys with more water due to topography. In the parts of the restoration projection, the greening vegetation coverage shows increasing trend, especially in the restoration area of the starter the year of 2015. The systematic projection with "digging, refilling, and reclaiming land" set the stage for greening vegetation to grow better by reshaping the land and fixing the soil. On the other hand, projects with "hardened slopes" quickly kept the land stable, but made the restoration area harder for natural plants growing. Therefore, this study showed that the pixel trisection model works well for closely tracking vegetation changes in the messy, dry mining areas. It clearly shows how greening vs. browning vegetation shift during restoration. This gives us a way to measure and check restoration success with real data, which is super helpful for making smart decisions. In a word, these findings matter can help us make better restoration plans, tailor management strategies to different areas, and boost the mine’s ability to store carbon and provide ecosystem service.

       

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