风化作用
水位下降(水文)
腐蚀
碳循环
碳酸盐
二氧化碳
水槽(地理)
地球科学
土壤生产函数
地质学
碳汇
固碳
硅酸盐
硫化物
土壤科学
地球化学
地貌学
气候变化
岩土工程
化学
地下水
生态系统
海洋学
土壤水分
生态学
含水层
成土作用
地理
有机化学
生物
地图学
作者
Aaron Bufe,Jeremy K. Caves Rugenstein,Niels Hovius
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2024-03-07
卷期号:383 (6687): 1075-1080
被引量:86
标识
DOI:10.1126/science.adk0957
摘要
Uplift and erosion modulate the carbon cycle over geologic timescales by exposing minerals to chemical weathering. However, the erosion sensitivity of mineral weathering remains difficult to quantify. Solute-chemistry datasets from mountain streams in different orogens isolate the impact of erosion on silicate weathering—a carbon dioxide (CO 2 ) sink—and coupled sulfide and carbonate weathering—a CO 2 source. Contrasting erosion sensitivities of these reactions produce a CO 2 -drawdown maximum at erosion rates of ~0.07 millimeters per year. Thus, landscapes with moderate uplift rates bolster Earth’s inorganic CO 2 sink, whereas more rapid uplift decreases or even reverses CO 2 sequestration. This concept of an “erosion optimum” for CO 2 drawdown reconciles conflicting views on the impact of mountain building on the carbon cycle and permits estimates of geologic CO 2 fluxes dependent upon tectonic changes.
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