globalchange  > 气候减缓与适应
DOI: 10.1038/ngeo2887
论文题名:
Elevated atmospheric escape of atomic hydrogen from Mars induced by high-Altitude water
作者: Chaffin M.S.; Deighan J.; Schneider N.M.; Stewart A.I.F.
刊名: Nature Geoscience
ISSN: 17520894
出版年: 2017
卷: 10, 期:3
起始页码: 174
结束页码: 178
语种: 英语
Scopus关键词: altitude ; atmospheric chemistry ; fundamental particle ; hydrogen ; Martian atmosphere ; one-dimensional modeling ; oxidation ; oxygen ; photochemistry ; spacecraft ; water
英文摘要: Atmospheric loss has controlled the history of Martian habitability, removing most of the planet's initial water through atomic hydrogen and oxygen escape from the upper atmosphere to space. In standard models, H and O escape in a stoichiometric 2:1 ratio because H reaches the upper atmosphere via long-lived molecular hydrogen, whose abundance is regulated by a photochemical feedback sensitive to atmospheric oxygen content. The relatively constant escape rates these models predict are inconsistent with known H escape variations of more than an order of magnitude on seasonal timescales, variation that requires escaping H to have a source other than H 2. The best candidate source is high-Altitude water, detected by the Mars Express spacecraft in seasonally variable concentrations. Here we use a one-dimensional time-dependent photochemical model to show that the introduction of high-Altitude water can produce a large increase in the H escape rate on a timescale of weeks, quantitatively linking these observations. This H escape pathway produces prompt H loss that is not immediately balanced by O escape, influencing the oxidation state of the atmosphere for millions of years. Martian atmospheric water loss may be dominated by escape via this pathway, which may therefore potentially control the planet's atmospheric chemistry. Our findings highlight the influence that seasonal atmospheric variability can have on planetary evolution.
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资源类型: 期刊论文
标识符: http://119.78.100.158/handle/2HF3EXSE/105820
Appears in Collections:气候减缓与适应
科学计划与规划

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作者单位: Laboratory for Atmospheric and Space Physics, University of Colorado, Boulder, CO, United States

Recommended Citation:
Chaffin M.S.,Deighan J.,Schneider N.M.,et al. Elevated atmospheric escape of atomic hydrogen from Mars induced by high-Altitude water[J]. Nature Geoscience,2017-01-01,10(3)
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