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全球植被、水分、热量和气候相互作用加剧了复合型极端事件。

Global vegetation, moisture, thermal and climate interactions intensify compound extreme events.

作者信息

Adeyeri Oluwafemi E, Zhou Wen, Ndehedehe Christopher E, Wang Xuan

机构信息

Low-Carbon and Climate Impact Research Centre, School of Energy and Environment, City University of Hong Kong, Kowloon, Hong Kong; Key Laboratory of Polar Atmosphere-Ocean-Ice System for Weather and Climate, Ministry of Education, Department of Atmospheric and Oceanic Sciences, Institute of Atmospheric Sciences, Fudan University, Shanghai, China; Australian Rivers Institute, Griffith University, Nathan, QLD 4111, Australia.

Key Laboratory of Polar Atmosphere-Ocean-Ice System for Weather and Climate, Ministry of Education, Department of Atmospheric and Oceanic Sciences, Institute of Atmospheric Sciences, Fudan University, Shanghai, China; Key Laboratory for Polar Science of the MNR, Polar Research Institute of China, Shanghai, China.

出版信息

Sci Total Environ. 2024 Feb 20;912:169261. doi: 10.1016/j.scitotenv.2023.169261. Epub 2023 Dec 12.

Abstract

Compound extreme events, encompassing drought, vegetation stress, wildfire severity, and heatwave intensity (CDVWHS), pose significant threats to societal, environmental, and health systems. Understanding the intricate relationships governing CDVWHS evolution and their interaction with climate teleconnections is crucial for effective climate adaptation strategies. This study leverages remote sensing, reanalysis data, and climate models to analyze CDVWHS during historical (1982-2014), near-future (2028-2060), and far-future (2068-2100) periods under two Shared Socioeconomic Pathways (SSP; 245 and 585). Our results show that reduced vegetation health, unfavorable temperature conditions, and low moisture conditions have negligible effects on vegetation density. However, they worsen the intensity of heatwaves and increase the risk of wildfires. Wildfires can persist when thermal conditions are poor despite favorable moisture levels. For example, despite adequate moisture availability, we link the 2012 Siberian wildfire in the Ob basin to anomalous negative thermal conditions and concurrent unfavorable thermal-moisture conditions. In contrast, the Amazon experiences extreme and exceptional drought associated with unfavorable moisture conditions in the same year. A comparative analysis of Siberian and North American fires reveals distinct burned area anomalies due to variations in vegetation density and wildfire fuel. The North American fires have lower positive anomalies in burned areas because of negative anomalous vegetation density, which reduced the amount of wildfire fuel. Furthermore, we examine basin-specific variability in climate teleconnections related to compound CDVWHS, revealing the primary modes of variability and evolution of CDVWHS through climate teleconnection patterns. Moreover, a substantial increase in the magnitude of heatwave severity emerges between the near and far future under SSP 585. This study underscores the urgency for targeted actions to enhance ecosystem resilience and safeguard vulnerable communities from CDVWHS impacts. Identifying CDVWHS hotspots and comprehending their complex relationships with environmental factors are essential for developing effective adaptation strategies in a changing climate.

摘要

复合极端事件,包括干旱、植被压力、野火严重程度和热浪强度(CDVWHS),对社会、环境和健康系统构成重大威胁。了解控制CDVWHS演变的复杂关系及其与气候遥相关的相互作用对于有效的气候适应策略至关重要。本研究利用遥感、再分析数据和气候模型,分析了在两种共享社会经济路径(SSP;245和585)下历史时期(1982 - 2014年)、近期(2028 - 2060年)和远期(2068 - 2100年)的CDVWHS。我们的结果表明,植被健康状况下降、温度条件不利和湿度条件较低对植被密度的影响可忽略不计。然而,它们会加剧热浪强度并增加野火风险。尽管湿度水平有利,但当热条件较差时野火仍可能持续。例如,尽管有充足的水分供应,但我们将2012年鄂毕河流域的西伯利亚野火与异常的负热条件以及同时出现的不利热湿条件联系起来。相比之下,同年亚马逊地区经历了与不利湿度条件相关的极端和异常干旱。对西伯利亚和北美火灾的比较分析表明,由于植被密度和野火燃料的差异,烧毁面积异常情况明显不同。由于植被密度异常为负,减少了野火燃料量,北美火灾的烧毁面积正异常较低。此外,我们研究了与复合CDVWHS相关的气候遥相关的流域特定变异性,通过气候遥相关模式揭示了CDVWHS变异性和演变 的主要模式。此外,在SSP 585情景下,近期和远期之间热浪严重程度的幅度大幅增加。本研究强调了采取有针对性行动以增强生态系统恢复力并保护脆弱社区免受CDVWHS影响的紧迫性。识别CDVWHS热点并理解它们与环境因素的复杂关系对于在不断变化的气候中制定有效的适应策略至关重要。

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