Mountain ranges, climate and weathering. Do orogens strengthen or weaken the silicate weathering carbon sink?

风化作用 硅酸盐 地质学 腐蚀 地球科学 剥蚀 土壤生产函数 气候变化 气候模式 碳循环 大气科学 地球化学 地貌学 土壤科学 成土作用 古生物学 海洋学 构造学 化学 土壤水分 生态学 生态系统 生物 有机化学
作者
Pierre Maffre,Jean‐Baptiste Ladant,Jean-Sébastien Moquet,Sébastien Carretier,David Labat,Yves Goddéris
出处
期刊:Earth and Planetary Science Letters [Elsevier]
卷期号:493: 174-185 被引量:33
标识
DOI:10.1016/j.epsl.2018.04.034
摘要

The role of mountains in the geological evolution of the carbon cycle has been intensively debated for the last decades. Mountains are thought to increase the local physical erosion, which in turns promotes silicate weathering, organic carbon transport and burial, and release of sulfuric acid by dissolution of sulfides. In this contribution, we explore the impact of mountain ranges on silicate weathering. Mountains modify the global pattern of atmospheric circulation as well as the local erosion conditions. Using an IPCC-class climate model, we first estimate the climatic impact of mountains by comparing the present day climate with the climate when all the continents are assumed to be flat. We then use these climate output to calculate weathering changes when mountains are present or absent, using standard expression for physical erosion and a 1D vertical model for rock weathering. We found that large-scale climate changes and enhanced rock supply by erosion due to mountain uplift have opposite effect, with similar orders of magnitude. A thorough testing of the weathering model parameters by data-model comparison shows that best-fit parameterizations lead to a decrease of weathering rate in the absence of mountain by about 20%. However, we demonstrate that solutions predicting an increase in weathering in the absence of mountain cannot be excluded. A clear discrimination between the solutions predicting an increase or a decrease in global weathering is pending on the improvement of the existing global databases for silicate weathering. Nevertheless, imposing a constant and homogeneous erosion rate for models without relief, we found that weathering decrease becomes unequivocal for very low erosion rates (below 10 t/km2/yr). We conclude that further monitoring of continental silicate weathering should be performed with a spatial distribution allowing to discriminate between the various continental landscapes (mountains, plains …).
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