High-resolution assessment of climate change impacts on the surface energy and water balance in the glaciated Naryn River basin, Central Asia.

IF 8 2区 环境科学与生态学 Q1 ENVIRONMENTAL SCIENCES
Journal of Environmental Management Pub Date : 2025-02-01 Epub Date: 2025-01-09 DOI:10.1016/j.jenvman.2024.124021
Sanjar Sadyrov, Erkin Isaev, Kenji Tanaka, Akihiko Murata, Roy C Sidle
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Abstract

Mountain regions of Central Asia are experiencing strong influences from climate change, with significant reductions in snow cover and glacial reserves. A comprehensive assessment of the potential consequences under the worst-case climate scenario is vital for adaptation measures throughout the region. Water balance analysis in the Naryn River basin was conducted for the baseline period of 1981-2000 including potential changes under the worst-case SSP5-8.5 scenario for 2077-2096 by combining high-resolution (5 km) regional climate projections with fully distributed glacio-hydrological (1 km) modeling. Results showed that with the complete degradation of glaciers and increase in evapotranspiration, the overall runoff will decrease by 16%, and in the upper basins, the reduction will exceed 40%. The maximum snow water equivalent (SWE) is projected to decrease by 17%, and the seasonal peak of SWE will occur one month earlier. The transition from snow to rain will significantly affect lower regions, increasing extremes in peak runoff and causing 10-year recurrence interval events to occur every 3-4 years. Moreover, extreme runoff in high mountainous areas will increase due to intensified snowmelt and increased rainfall extremes. Additionally, a gradient of surface soil temperature change of 0.1 °C per 100 m elevation gain was observed, suggesting a potential snow-albedo feedback effect that could further amplify the warming, especially at higher altitudes. This study provides a robust analytical framework to assess the complex responses of mountain ecosystems to the impacts of climate change, with the potential of widespread application for addressing the challenges facing these critical regions.

气候变化对中亚纳林河冰川流域地表能量和水分平衡影响的高分辨率评估。
中亚山区正受到气候变化的强烈影响,积雪和冰川储量显著减少。全面评估最坏气候情景下的潜在后果对于整个地区的适应措施至关重要。采用高分辨率(5 km)区域气候预估和全分布式(1 km)冰川-水文模拟相结合的方法,对Naryn河流域1981-2000年基线期的水平衡进行了分析,包括2077-2096年SSP5-8.5最坏情景下的潜在变化。结果表明:随着冰川完全退化和蒸散量的增加,流域总径流量将减少16%,上游流域减少幅度超过40%;最大雪水当量(SWE)预计将减少17%,季节高峰将提前一个月出现。从雪到雨的转变将显著影响较低的地区,增加峰值径流的极端事件,并导致每3-4年发生一次10年复发间隔事件。此外,由于融雪加剧和极端降雨增加,高山区的极端径流将增加。此外,观测到每100 m海拔增加0.1°C的地表土壤温度梯度变化,表明潜在的雪反照率反馈效应可能进一步放大变暖,特别是在高海拔地区。该研究为评估山区生态系统对气候变化影响的复杂响应提供了一个强有力的分析框架,具有广泛应用于解决这些关键地区面临的挑战的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Environmental Management
Journal of Environmental Management 环境科学-环境科学
CiteScore
13.70
自引率
5.70%
发文量
2477
审稿时长
84 days
期刊介绍: The Journal of Environmental Management is a journal for the publication of peer reviewed, original research for all aspects of management and the managed use of the environment, both natural and man-made.Critical review articles are also welcome; submission of these is strongly encouraged.
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