Temporal and Phenological Modulation of the Impact of Increasing Drought Conditions on Vegetation Growth in a Humid Big River Basin: Insights From Global Comparisons

IF 7.3 1区 地球科学 Q1 ENVIRONMENTAL SCIENCES
Earths Future Pub Date : 2025-03-21 DOI:10.1029/2024EF005720
Junlan Xiao, César Terrer, Pierre Gentine, Ryunosuke Tateno, Lei Fan, Mingguo Ma, Yuemin Yue, Wenping Yuan, Josep Peñuelas, Weiyu Shi
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Abstract

As the upward trend in extreme drought continues with climate change, terrestrial vegetation growth is assumed to become largely reduced. We investigated anomalies of remote sensing vegetation indexes under droughts across the upper Yangtze River (UYR) basin, characterized as humid but having experienced frequent seasonal droughts from 2000. Then we compared global big river basins by focusing on the Nile and Congo basins, which have similar characteristics to the UYR. The vegetation across the UYR was affected by water stress in recent years but shows reduced sensitivity to drought. The compound effect of drought timing and phenology largely drives the response. Results show that late-season droughts generally have a greater impact on vegetation growth compared to early season droughts, with alpine grasslands showing particularly pronounced responses due to their ecological features such as shallow root depth and aggressive hydrological behavior. The Nile basin, similar to the UYR basin, exhibits pronounced late-season vegetation vulnerability, highlighting shared patterns of drought impact across heterogeneous landscapes. In contrast, the tropical rainforests in the Congo basin demonstrate greater resilience, supported by complex root systems, dense canopies, and low cloud cover that reduces evaporation. This study underscores the importance of considering regional ecological characteristics, drought timing, and phenological stages in assessing vegetation responses to drought. These insights are critical for predicting and managing ecosystem resilience under changing climatic conditions.

Abstract Image

干旱条件增加对湿润大河流域植被生长影响的时间和物候调节:来自全球比较的见解
由于极端干旱的上升趋势随着气候变化而继续,假定陆地植被的生长将大大减少。研究了2000年以来长江上游流域湿润、季节性干旱频发的干旱条件下遥感植被指数的异常特征。在此基础上,以具有相似特征的尼罗河流域和刚果流域为重点,对全球大河流域进行了比较。近年来,青藏高原植被受到水分胁迫的影响,但对干旱的敏感性有所降低。干旱时间和物候的复合效应在很大程度上驱动了这一反应。结果表明,与季初干旱相比,季末干旱对植被生长的影响更大,高寒草地由于其根深浅、水文行为积极等生态特征,对植被生长的影响尤为明显。尼罗河流域与维吾尔流域相似,表现出明显的季末植被脆弱性,突出了异质景观中干旱影响的共同模式。相比之下,刚果盆地的热带雨林表现出更强的恢复能力,这得益于复杂的根系、茂密的树冠和减少蒸发的低云量。该研究强调了考虑区域生态特征、干旱时间和物候阶段在评估植被干旱响应中的重要性。这些见解对于预测和管理气候变化条件下的生态系统恢复能力至关重要。
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来源期刊
Earths Future
Earths Future ENVIRONMENTAL SCIENCESGEOSCIENCES, MULTIDI-GEOSCIENCES, MULTIDISCIPLINARY
CiteScore
11.00
自引率
7.30%
发文量
260
审稿时长
16 weeks
期刊介绍: Earth’s Future: A transdisciplinary open access journal, Earth’s Future focuses on the state of the Earth and the prediction of the planet’s future. By publishing peer-reviewed articles as well as editorials, essays, reviews, and commentaries, this journal will be the preeminent scholarly resource on the Anthropocene. It will also help assess the risks and opportunities associated with environmental changes and challenges.
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