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DOI10.1029/2019GL083368
A Capacitor-Discharge Mechanism to Explain the Timing of Orogeny-Related Global Glaciations
Joshi, Manoj M.1,2; Mills, Benjamin J. W.3; Johnson, Martin2,4
2019-07-28
发表期刊GEOPHYSICAL RESEARCH LETTERS
ISSN0094-8276
EISSN1944-8007
出版年2019
卷号46期号:14页码:8347-8354
文章类型Article
语种英语
国家England; Ireland
英文摘要

Over geological timescales, mountain building or orogenesis is associated with increased weathering, the drawdown of atmospheric CO2, and global cooling. However, a multimillion-year delay appears to exist between peaks in low-latitude mountain uplift and the maximum extent of Phanerozoic glaciation, implying a more complex causal relationship between the two. Here we show that global silicate weathering can be modulated by orogeny in three distinct phases. High, young mountain belts experience preferential precipitation and the highest erosion. As mountains are denuded, precipitation decreases, but runoff temperature rises, sharply increasing chemical weathering potential and CO2 drawdown. In the final phase, erosion and weathering are throttled by flatter topography. We conclude that orogeny acts as a capacitor in the climate system, granting the potential for intense transient CO2 drawdown when mountain ranges are denuded; the mechanism suggests such a scenario potentially happening 10-50 x 10(6) years in the future.


Plain Language Summary Over timescales of tens of millions of years or more, plate tectonics can raise large mountain ranges. CO2 can be removed from the atmosphere through a complex series of processes involving the weathering of rocks, which depends on processes such as rainfall, which in turn is affected by the presence of mountains. The result is that mountain ranges are associated with a reduction of atmospheric CO2 and global cooling on these very long timescales. An analysis of geological data suggests a multimillion-year delay between peaks in mountain range uplift at low latitudes and the maximum extent of glaciation over the last 400 x 10(6) years. Our manuscript explains the delay using two numerical or computer models: a climate and circulation model and a geochemical model that simulates weathering processes. We show that weathering, and the implied reduction of atmospheric CO2, happens most intensely when mountain ranges are eroded, because the ability of weathering to remove CO2 depends not just on precipitation but also on the temperature of river runoff. Our mechanism intriguingly suggests such a scenario potentially happening 10-50 x 10(6) years in the future associated with projected changes to the height of the Tibetan plateau.


英文关键词Weathering Paleoclimate Climate Phanerozoic CO2
领域气候变化
收录类别SCI-E
WOS记录号WOS:000481818900053
WOS关键词CHEMICAL-WEATHERING RATES ; EROSION RATES ; CLIMATE ; MODEL ; CO2 ; ZONE
WOS类目Geosciences, Multidisciplinary
WOS研究方向Geology
引用统计
文献类型期刊论文
条目标识符http://119.78.100.173/C666/handle/2XK7JSWQ/185316
专题气候变化
作者单位1.Univ East Anglia, Climat Res Unit, Norwich, Norfolk, England;
2.Univ East Anglia, Ctr Ocean & Atmospher Sci, Norwich, Norfolk, England;
3.Univ Leeds, Sch Earth & Environm, Leeds, W Yorkshire, England;
4.Bantry Marine Res Stn, Gearhies, Bantry, Ireland
推荐引用方式
GB/T 7714
Joshi, Manoj M.,Mills, Benjamin J. W.,Johnson, Martin. A Capacitor-Discharge Mechanism to Explain the Timing of Orogeny-Related Global Glaciations[J]. GEOPHYSICAL RESEARCH LETTERS,2019,46(14):8347-8354.
APA Joshi, Manoj M.,Mills, Benjamin J. W.,&Johnson, Martin.(2019).A Capacitor-Discharge Mechanism to Explain the Timing of Orogeny-Related Global Glaciations.GEOPHYSICAL RESEARCH LETTERS,46(14),8347-8354.
MLA Joshi, Manoj M.,et al."A Capacitor-Discharge Mechanism to Explain the Timing of Orogeny-Related Global Glaciations".GEOPHYSICAL RESEARCH LETTERS 46.14(2019):8347-8354.
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