加剧的气候变暖抑制了青藏高原的融雪活动

IF 6.4 1区 地球科学 Q1 ENVIRONMENTAL SCIENCES Advances in Climate Change Research Pub Date : 2024-06-01 DOI:10.1016/j.accre.2024.06.005
Xiang Li , Peng Cui , Xue-Qin Zhang , Fang Zhang
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引用次数: 0

摘要

在研究气候变暖对融雪的影响时,了解水文因素之间的相互关系至关重要。然而,这些联系往往被忽视,导致温度与融雪之间的关系不明确。本研究调查了青藏高原 1961 年至 2020 年温度与融雪之间复杂的相互作用,重点关注极端高温事件如何影响极端融雪的频率。通过结构方程模型,我们发现有三个与温度相关的因素对融雪和极端融雪有主要影响。通过降雪量、积雪深度和积雪覆盖面的变化,我们发现年平均气温对融雪有显著的间接影响。相比之下,高温日(日最高气温超过第 90 百分位数)和热浪(至少连续三个高温日)直接或间接地对极端融雪产生负面影响。极端气温事件增加的直接影响与高温期提前到来有关,这加快了融雪速度,缩短了极端融雪期的持续时间。此外,气候变暖导致积雪覆盖面积减少也是抑制融雪和极端融雪频率的一个主要因素。我们还揭示了温度与融雪关系的时空变化,这种变化在很大程度上取决于融雪模式的变化。该研究阐明了气候变暖抑制青藏高原融雪和极端融雪事件的原因,强调了与雪有关的因素和物候因素的中介作用。研究结果将为全球高寒地区的气候模拟和水资源管理决策提供科学支持。
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Intensified warming suppressed the snowmelt in the Tibetan Plateau

Understanding how hydrological factors interrelate is crucial when examining the impact of climate warming on snowmelt. However, these connections are often overlooked, leading to an unclear relationship between temperature and snowmelt. This study investigates the complex interplay between temperature and snowmelt in the Tibetan Plateau from 1961 to 2020, focusing on how extreme high-temperature events affect the frequency of extreme snowmelt. Using a structural equation model, we detected three temperature-related factors that predominantly influenced snowmelt and extreme snowmelt. The annual average temperature was found to have a significant indirect impact on snowmelt, mediated by changes in snowfall, snow depth and snow cover. By contrast, high-temperature days (daily maximum temperatures exceeding the 90th percentile) and heat waves (at least three consecutive high-temperature days) negatively affected extreme snowmelt directly or indirectly. The direct effect of increasing extreme temperature events was associated with an earlier onset of high-temperature periods, which accelerated snowmelt and shortened the duration of extreme snowmelt periods. Additionally, the reduction in snow cover owing to warming emerged as a main factor suppressing snowmelt and extreme snowmelt frequencies. We also revealed spatiotemporal variations in the temperature‒snowmelt relationship that highly depended on changes in snowmelt patterns. The study elucidated why warming suppresses snowmelt and extreme snowmelt events in the Tibetan Plateau, highlighting the mediating roles of snow-related and phenological factors. The findings will provide scientific support for climate simulation and water management policymaking in alpine regions worldwide.

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来源期刊
Advances in Climate Change Research
Advances in Climate Change Research Earth and Planetary Sciences-Atmospheric Science
CiteScore
9.80
自引率
4.10%
发文量
424
审稿时长
107 days
期刊介绍: Advances in Climate Change Research publishes scientific research and analyses on climate change and the interactions of climate change with society. This journal encompasses basic science and economic, social, and policy research, including studies on mitigation and adaptation to climate change. Advances in Climate Change Research attempts to promote research in climate change and provide an impetus for the application of research achievements in numerous aspects, such as socioeconomic sustainable development, responses to the adaptation and mitigation of climate change, diplomatic negotiations of climate and environment policies, and the protection and exploitation of natural resources.
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