Wind erosion changes from ecological restoration and climatic drivers on the Tibetan plateau

IF 5.4 Q1 ENVIRONMENTAL SCIENCES Environmental and Sustainability Indicators Pub Date : 2024-06-01 DOI:10.1016/j.indic.2024.100420
Xiaodan Lin , Tong Wu , Lingqiao Kong , Zhiyun Ouyang
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Abstract

Wind erosion increases risks to soil productivity and food security, which have large implications for ecosystems and human well-being. However, the spatial patterns of how ecological restoration and climate change affect wind erosion remain poorly understood. Here, we combined scenario analysis with wind erosion assessment to evaluate the spatial associations of wind erosion with ecological restoration and climatic factors on the Tibetan Plateau. A structural equation model (SEM) was developed to determine the major driver of wind erosion. We identified an overall decrease of wind erosion modulus during 2001–2018, followed by increases of 7.2–19.4% under different climate change scenarios in 2030. Nearly two-thirds of the study area was characterized by wind erosion primarily driven by climate change, while ecological restoration accounted for the wind erosion in almost two-fifths of the study area. The SEM revealed a dominating role played by wind speed in affecting wind erosion directly and indirectly by modulating soil and vegetation conditions. Our study highlights the importance of embracing the spatial variations in the impacts of ecological restoration and climatic factors into the systematic planning of soil conservation and management. Results of this study could inform response strategies aiming to prevent and control wind erosion by identifying the location and extent of affected ecosystem services in the context of climate change.

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青藏高原生态恢复和气候驱动因素带来的风蚀变化
风蚀增加了土壤生产力和粮食安全的风险,对生态系统和人类福祉具有重大影响。然而,人们对生态恢复和气候变化如何影响风蚀的空间模式仍然知之甚少。在此,我们将情景分析与风蚀评估相结合,评估青藏高原风蚀与生态恢复和气候因素的空间关联。我们建立了一个结构方程模型(SEM)来确定风蚀的主要驱动因素。我们发现,2001-2018 年期间风蚀模数总体下降,2030 年不同气候变化情景下风蚀模数增加 7.2-19.4%。近三分之二研究区域的风蚀主要由气候变化驱动,而近五分之二研究区域的风蚀主要由生态恢复驱动。监测结果表明,风速直接或间接地影响着土壤和植被状况,从而对风蚀起着主导作用。我们的研究强调了在系统规划土壤保护和管理时考虑生态恢复和气候因素影响的空间变化的重要性。这项研究的结果可以通过确定气候变化背景下受影响生态系统服务的位置和范围,为旨在预防和控制风蚀的应对策略提供信息。
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来源期刊
Environmental and Sustainability Indicators
Environmental and Sustainability Indicators Environmental Science-Environmental Science (miscellaneous)
CiteScore
7.80
自引率
2.30%
发文量
49
审稿时长
57 days
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