Impacts of land surface darkening on frozen ground and ecosystems over the Tibetan Plateau

IF 6 2区 地球科学 Q1 GEOSCIENCES, MULTIDISCIPLINARY Science China Earth Sciences Pub Date : 2024-09-02 DOI:10.1007/s11430-023-1363-3
Shuchang Tang, Tao Wang, Dan Liu, Tandong Yao, Shilong Piao
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Abstract

Tibetan Plateau (TP) is known as the “Third Pole” of the Earth. Any changes in land surface processes on the TP can have an unneglectable impact on regional and global climate. With the warming and wetting climate, the land surface of the TP saw a darkening trend featured by decreasing surface albedo over the past decades, primarily due to the melting of glaciers, snow, and greening vegetation. Recent studies have investigated the effects of the TP land surface darkening on the field of climate, but these assessments only address one aspect of the feedback loop. How do these darkening-induced climate changes affect the frozen ground and ecosystems on the TP? In this study, we investigated the impact of TP land surface darkening on regional frozen ground and ecosystems using the state-of-the-art land surface model ORCHIDEE-MICT. Our model results show that darkening-induced climate changes on the TP will lead to a reduction in the area of regional frozen ground by 1.1×104±0.019×104 km2, a deepening of the regional permafrost active layer by 0.06±0.0004 m, and a decrease in the maximum freezing depth of regional seasonal frozen ground by 0.06±0.0016 m compared to the scenario without TP land surface darkening. Furthermore, the darkening-induced climate change on the TP will result in an increase in the regional leaf area index and an enhancement in the regional gross primary productivity, ultimately leading to an increase in regional terrestrial carbon stock by 0.81±0.001 PgC. This study addresses the remaining piece of the puzzle in the feedback loop of TP land surface darkening, and improves our understanding of interactions across multiple spheres on the TP. The exacerbated regional permafrost degradation and increasing regional terrestrial carbon stock induced by TP land surface darkening should be considered in the development of national ecological security barrier.

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地表暗化对青藏高原冻土和生态系统的影响
青藏高原(TP)被称为地球的 "第三极"。青藏高原地表过程的任何变化都会对区域和全球气候产生不可忽视的影响。随着气候变暖和湿润,过去几十年来,主要由于冰川融化、积雪和植被变绿,青藏高原陆地表面呈现出地表反照率下降的暗化趋势。最近的研究调查了大陆架地表变暗对气候领域的影响,但这些评估只涉及反馈环路的一个方面。这些变暗引起的气候变化如何影响大洋洲陆地的冻土和生态系统?在这项研究中,我们利用最先进的陆表模式 ORCHIDEE-MICT 研究了大陆架地表变暗对区域冻土和生态系统的影响。我们的模型结果表明,与没有TP地表暗化的情景相比,TP地表暗化引起的气候变化将导致区域冻土面积减少1.1×104±0.019×104 km2,区域冻土活动层加深0.06±0.0004 m,区域季节性冻土最大冻结深度减少0.06±0.0016 m。此外,TP 地表变暗引起的气候变化将导致区域叶面积指数增加,区域总初级生产力提高,最终导致区域陆地碳储量增加 0.81±0.001 PgC。这项研究解决了陆地表层变黑反馈环路中剩下的难题,并加深了我们对陆地表层多领域相互作用的理解。在制定国家生态安全屏障时,应考虑到TP地表暗化引起的区域永久冻土退化加剧和区域陆地碳储量增加。
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来源期刊
Science China Earth Sciences
Science China Earth Sciences GEOSCIENCES, MULTIDISCIPLINARY-
CiteScore
9.60
自引率
5.30%
发文量
135
审稿时长
3-8 weeks
期刊介绍: Science China Earth Sciences, an academic journal cosponsored by the Chinese Academy of Sciences and the National Natural Science Foundation of China, and published by Science China Press, is committed to publishing high-quality, original results in both basic and applied research.
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