天山东部乌鲁木齐河源头冰川排泄量的变化和未来预测(1980 年代-2017 年)

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.2024.05.001
Hui Zhang , Fei-Teng Wang , Ping Zhou , Yi-Da Xie
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引用次数: 0

摘要

为了解决天山长期冰川排水量数据匮乏以及模拟和预测水文过程不足的问题,本研究分析了 1980 年代至 2017 年期间多个时间尺度的观测排水量,并预测了中亚天山东部这一具有代表性的冰川化高山地区的变化。研究利用经典水文模型和冰川动力学模块对水文过程进行了模拟,以预测四种未来情景(SSP1、SSP2、SSP3 和 SSP5)下的变化。年、月(6 月、7 月、8 月)和日时间尺度的排泄率来自两个水文站:乌鲁木齐冰川 1 号水文站(UGH)和宗孔站(ZK)。总体而言,在研究期间,两个水文站的年排泄量和夏季排泄量均显著增加(p < 0.05)。其年内变化主要源于补给机制的不同。模拟结果表明,在四种 SSPs 方案下,UGH 的年排泄量临界点可能出现在 2018 年至 2024 年之间。据预测,ZK 的冰川排泄量停止时间早于 UGH。这与冰川类型和大小有关,表明小冰川严重发育的盆地将更早达到排泄峰值,从而更早地面临淡水供应挑战。这些发现可作为中亚冰川径流研究的参考,并为规划当地水资源项目提供决策依据。
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Variations and future projections of glacial discharge of Urumqi River Headwaters, eastern Tien Shan (1980s–2017)

To address data scarcity on long-term glacial discharge and inadequacies in simulating and predicting hydrological processes in the Tien Shan, this study analysed the observed discharge at multiple timescales over 1980s–2017 and projected changes within a representative glacierized high-mountain region: eastern Tien Shan, Central Asia. Hydrological processes were simulated to predict changes under four future scenarios (SSP1, SSP2, SSP3, and SSP5) using a classical hydrological model coupled with a glacier dynamics module. Discharge rates at annual, monthly (June, July, August) and daily timescales were obtained from two hydrological gauges: Urumqi Glacier No.1 hydrological station (UGH) and Zongkong station (ZK). Overall, annual and summer discharge increased significantly (p < 0.05) at both stations over the study period. Their intra-annual variations mainly resulted from differences in their recharge mechanisms. The simulations show that a tipping point in annual discharge at UGH may occur between 2018 and 2024 under the four SSPs scenarios. Glacial discharge is predicted to cease earlier at ZK than at UGH. This relates to glacier type and size, suggesting basins with heavily developed small glaciers will reach peak discharge sooner, resulting in an earlier freshwater supply challenge. These findings serve as a reference for research into glacial runoff in Central Asia and provide a decision-making basis for planning local water-resource projects.

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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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