IF 8.5 1区 地球科学 Q1 METEOROLOGY & ATMOSPHERIC SCIENCES
Yupeng Li, Yaning Chen, Fan Sun, Zhi Li, Gonghuan Fang, Weili Duan, Xueqi Zhang, Baofu Li
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引用次数: 0

摘要

全球变暖正在引发各种地球系统的临界点,从而加速气候灾害的发生。虽然亚洲高山地区降水模式的变化已被广泛研究,但引发降雪量迅速减少的具体临界点仍不清楚。我们采用连续的分片线性回归模型,将亚洲高山地区分为四种不同的降水机制:不敏感的降雪为主地区、敏感的降雪为主地区、敏感的降雨为主地区和不敏感的降雨为主地区。我们的研究结果表明,未来气候变暖将增加冬季和春季降雪对气候变化的敏感性,而夏季和秋季降雪的敏感性将降低。所有四种降水机制都表现出向高海拔地区的上移,不同地区和季节的海拔上升速度不同。温度是降雪量减少的主要驱动因素,而相对湿度则可减轻降雪量的减少。这项研究确定了易受降雪损失影响的高风险地区,有助于指导制定有效的缓解策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Warming triggers snowfall fraction loss Thresholds in High-Mountain Asia

Warming triggers snowfall fraction loss Thresholds in High-Mountain Asia

Global warming is accelerating climate disasters by triggering tipping points in various Earth systems. Although changes in precipitation patterns in High-Mountain Asia (HMA) have been extensively studied, the specific thresholds that trigger rapid snowfall loss remain unclear. A continuous piecewise linear regression model was employed to classify HMA into four distinct precipitation regimes: insensitive snowfall-dominated areas, sensitive snowfall-dominated areas, sensitive rainfall-dominated areas, and insensitive rainfall-dominated areas. Our results show that future warming will increase the sensitivity of winter and spring snowfall to climate change, whereas summer and autumn snowfall will become less sensitive. All four precipitation regimes exhibit an upward shift to higher elevations, with varying rates of elevation gain across regions and seasons. Temperature is the primary driver of snowfall loss, whereas relative humidity mitigates it. This study identifies high-risk areas vulnerable to snowfall loss, to help guide the development of effective mitigation strategies.

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来源期刊
npj Climate and Atmospheric Science
npj Climate and Atmospheric Science Earth and Planetary Sciences-Atmospheric Science
CiteScore
8.80
自引率
3.30%
发文量
87
审稿时长
21 weeks
期刊介绍: npj Climate and Atmospheric Science is an open-access journal encompassing the relevant physical, chemical, and biological aspects of atmospheric and climate science. The journal places particular emphasis on regional studies that unveil new insights into specific localities, including examinations of local atmospheric composition, such as aerosols. The range of topics covered by the journal includes climate dynamics, climate variability, weather and climate prediction, climate change, ocean dynamics, weather extremes, air pollution, atmospheric chemistry (including aerosols), the hydrological cycle, and atmosphere–ocean and atmosphere–land interactions. The journal welcomes studies employing a diverse array of methods, including numerical and statistical modeling, the development and application of in situ observational techniques, remote sensing, and the development or evaluation of new reanalyses.
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