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青藏高原高寒湿地产水量的时空格局与影响因素研究

Spatiotemporal patterns and influencing factors of water yield function in alpine wetlands on the Qinghai-Tibet Plateau

  • 摘要: 青藏高原是世界上海拔最高的高原,孕育了黄河、长江等重要河流,是中国乃至亚洲的核心生态安全屏障区。高寒湿地作为青藏高原独特的湿地类型,生物多样性高、水资源丰富,是中国重要的水源涵养区和气候调节区。本研究基于青藏高原高寒湿地2000年、2010年和2020年3期遥感影像,分析了不同类型高寒湿地的面积变化与空间转移过程,定量评估了2000—2020年高寒湿地的产水功能,并探索了降水、植被覆盖度、湿地类型、载畜量等自然和人为因素对高寒湿地产水功能的影响机制。研究结果表明,青藏高原高寒湿地类型以草甸湿地和滩地为主,2000—2020年湿地总面积逐渐减少,其中草甸湿地和滩地面积减少最多,分别减少了4.31×104 hm2和2.24×104 hm2。2000—2020年高寒湿地平均产水量为215.92 mm,年际波动较小,呈现东高西低的空间特征,其中泥炭湿地的产水能力最高,其次是草甸湿地和灌木湿地,而盐沼湿地和滩地的产水能力最弱。自然因子对高寒湿地产水量的影响较为显著,降水量是影响其空间分布格局的主要驱动因子,其次是植被覆盖度,降水量与湿地类型的交互作用影响最大。总体来说,本研究厘清了近二十年青藏高原不同类型高寒湿地产水量的时空变化格局与影响因素,为青藏高原水资源合理利用与管理提供了理论支撑,对于青藏高原的可持续发展具有重要意义。

     

    Abstract: The Qinghai-Tibet Plateau, recognized as the world’s highest and most extensive plateau, serves as a critical ecological security barrier for both China and Asia, feeding major river systems including the Yellow River and the Yangtze River. Its alpine wetlands, distinguished by high biodiversity and abundant water resources, play an important role in regional water conservation and climate regulation. Understanding the dynamics of their water yield function is paramount for sustainable water resource management and ecological protection in this fragile environment. This study systematically elucidates the spatiotemporal dynamics of water yield in alpine wetlands across the Qinghai-Tibet Plateau from 2000 to 2020, along with its underlying driving mechanisms. Utilizing remote sensing imagery from 2000, 2010 and 2020, we analyzed areal changes and spatial transitions among different wetland types, quantitatively assessed water yield variations using the water balance equation, and further employed a geodetector model to explore the influence mechanisms of both natural factors (precipitation, vegetation cover, wetland type) and anthropogenic factors (livestock carrying capacity). The results revealed that alpine wetland types on the Qinghai-Tibet Plateau are dominated by meadow wetlands and mudflats. From 2000 to 2020, the total wetland area gradually decreased, with meadow wetlands and mudflats exhibiting the largest reductions, decreasing by 4.31×104 hm2 and 2.24×104 hm2, respectively. The mean annual water yield of alpine wetlands was 215.92 mm, exhibiting relatively low inter-annual variability but pronounced spatial heterogeneity, characterized by a distinct east-high and west-low pattern. Notably, water yield capacity varied significantly by wetland type, with peat wetlands demonstrating the highest capacity, followed by meadow wetlands and shrub wetlands, while salt marshes and mudflats showed the lowest. Furthermore, natural factors predominantly governed water yield in alpine wetlands. Precipitation was identified as the primary driver influencing the spatial distribution, followed by vegetation coverage. Importantly, the interactive effect between precipitation and wetland type exerted a stronger influence on water yield than any single factor, highlighting the complex, coupled nature of these environmental controls. Anthropogenic factors, while contributory, demonstrated comparatively weaker effects than natural drivers. Overall, this study systematically clarifies the spatiotemporal patterns and multi-factor driving mechanisms of water yield across different alpine wetland types on the Qinghai-Tibet Plateau over the past two decades. These findings not only advance the scientific understanding of water-related ecosystem services in high-altitude wetland ecosystems but also provide critical theoretical support for the rational utilization and sustainable management of water resources on the Qinghai-Tibet Plateau.

     

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