亚洲水塔的失衡

Tandong Yao, Tobias Bolch, Deliang Chen, Jing Gao, Walter Immerzeel, Shilong Piao, Fengge Su, Lonnie Thompson, Yoshihide Wada, Lei Wang, Tao Wang, Guangjian Wu, Baiqing Xu, Wei Yang, Guoqing Zhang, Ping Zhao
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引用次数: 180

摘要

兴都库什-喀喇昆仑山-喜马拉雅山系统被称为 "第三极",因为它是继极地地区之后全球最大的冰冻水储存库,为近 20 亿人提供可靠的供水。明显的大气变暖改变了这个所谓亚洲水塔的平衡,也改变了下游国家的水资源。在这篇综述中,我们综合了观测证据和模型预测,描述了冰雪加速转化为液态水导致的亚洲水塔失衡。这种相变与西风和印度季风之间的时空相互作用造成的南北差异有关。相应的空间失衡表现为内流河流域或外流河流域淡水资源的变化。预计全球变暖将加剧这种不平衡,缓解黄河和长江流域的缺水状况,加剧印度河和阿姆河流域的缺水状况。然而,亚洲水塔的未来仍然极不确定。要准确预测未来的供水情况,就必须在数据稀缺的地区建立综合监测站,并开发先进的大气层--冰冻圈--水文耦合模型。需要利用这些模型为制定可持续水资源管理的可行政策提供信息。大气变暖使兴都库什-喀喇昆仑山-喜马拉雅山系统(亚洲水塔)失衡。Yao 等人回顾了观测到的大气水和亚洲水塔淡水成分的变化,重点讨论了这些变化对下游流域淡水资源和脆弱社会的未来影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

The imbalance of the Asian water tower

The imbalance of the Asian water tower
The Hindu Kush–Karakoram–Himalayan system, named the Third Pole because it is the largest global store of frozen water after the polar regions, provides a reliable water supply to almost 2 billion people. Marked atmospheric warming has changed the balance of this so-called Asian water tower and altered water resources in downstream countries. In this Review, we synthesize observational evidence and model projections that describe an imbalance in the Asian water tower caused by accelerated transformation of ice and snow into liquid water. This phase change is associated with a south–north disparity due to the spatio-temporal interaction between the westerlies and the Indian monsoon. A corresponding spatial imbalance is exhibited by alterations in freshwater resources in endorheic or exorheic basins. Global warming is expected to amplify this imbalance, alleviating water scarcity in the Yellow and Yangtze River basins and increasing scarcity in the Indus and Amu Darya River basins. However, the future of the Asian water tower remains highly uncertain. Accurate predictions of future water supply require the establishment of comprehensive monitoring stations in data-scarce regions and the development of advanced coupled atmosphere–cryosphere–hydrology models. Such models are needed to inform the development of actionable policies for sustainable water resource management. Atmospheric warming has imbalanced the Hindu Kush–Karakoram–Himalayan system (the Asian water tower (AWT)). Yao et al. review observed changes in atmospheric water and freshwater AWT constituents, focusing on their future consequences for freshwater resources and vulnerable societies across downstream basins.
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