碳循环
地球科学
变质岩
地质学
碳纤维
总有机碳
风化作用
碳汇
地球化学
新生代
温室气体
环境科学
气候变化
地貌学
环境化学
海洋学
化学
材料科学
生态学
构造盆地
生态系统
复合数
复合材料
生物
作者
Yingchun Wang,Sanyu Quan,Xin Tang,Takahiro Hosono,Yinlei Hao,Jiao Tian,Zhonghe Pang
摘要
Abstract This paper aims to update our understanding of the carbon cycle in the Himalayas, the most intense collisional orogeny globally, by providing new insight into its impact on Cenozoic climate cooling through the use of isotopic variations in both organic and inorganic carbon and an isotopic mass balance model. Our results from 20 selected hot springs show that the relative contributions of dissolved carbon from the mantle, metamorphic decarbonization, aqueous dissolution, and soil organic matter are approximately 2%, 82%, 6%, and 10%, respectively. Approximately 87% ± 5% of CO 2 generated in the deep crust precipitates as calcite, while approximately 5.5% ± 1% of this carbon is converted to biomass through microbial chemosynthesis at depths less than 2 km. Our random forests approach yielded a metamorphic carbon flux from the entire Himalayan orogenic belt of approximately 2.7 ∼ 4.5 × 10 12 mol/yr. The minor CO 2 released into the atmosphere (2.5 ∼ 4.2 × 10 11 mol/yr) is comparable to the carbon consumption driven by Himalayan weathering. This paper provides new insights into deep carbon cycling, notably that approximately 93% of deeply sourced carbon is trapped in the shallow crust, rendering orogenic processes carbon neutral and possibly acting as one of the major triggers of long‐term climate cooling in the Cenozoic.
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