globalchange  > 气候变化事实与影响
DOI: 10.1002/2017GB005643
Scopus记录号: 2-s2.0-85021794656
论文题名:
Temperature and oxygen dependence of the remineralization of organic matter
作者: Laufkötter C; , John J; G; , Stock C; A; , Dunne J; P
刊名: Global Biogeochemical Cycles
ISSN: 8866236
出版年: 2017
卷: 31, 期:7
起始页码: 1038
结束页码: 1050
语种: 英语
英文关键词: export ; oxygen ; POC flux ; remineralization ; temperature
Scopus关键词: bacterium ; biogeochemistry ; carbon flux ; carbon sink ; climate modeling ; colonization ; euphotic zone ; marine environment ; organic matter ; oxygen ; oxygen minimum layer ; particulate organic carbon ; remineralization ; temperature effect ; Bacteria (microorganisms)
英文摘要: Accurate representation of the remineralization of sinking organic matter is crucial for reliable projections of the marine carbon cycle. Both water temperature and oxygen concentration are thought to influence remineralization rates, but limited data constraints have caused disagreement concerning the degree of these influences. We analyze a compilation of particulate organic carbon (POC) flux measurements from 19 globally distributed sites. Our results indicate that the attenuation of the flux of particulate organic matter depends on temperature with a Q10 between 1.5 and 2.01, and on oxygen described by a half-saturation constant between 4 and 12 μmol/L. We assess the impact of the temperature and oxygen dependence in the biogeochemistry model Carbon, Ocean Biogeochemistry, and Lower Trophics, coupled to Geophysical Fluid Dynamics Laboratory's Earth System Model ESM2M. The new remineralization parameterization results in shallower remineralization in the low latitudes but deeper remineralization in the high latitudes, redistributing POC flux toward the poles. It also decreases the volume of the oxygen minimum zones, partly addressing a long-standing bias in global climate models. Extrapolating temperature-dependent remineralization rates to the surface (i.e., beyond the depth range of POC flux data) resulted in rapid recycling and excessive surface nutrients. Surface nutrients could be ameliorated by reducing near-surface rates in a manner consistent with bacterial colonization, suggesting the need for improved remineralization constraints within the euphotic zone. The temperature and oxygen dependence cause an additional 10% decrease in global POC flux at 500 m depth, but no significant change in global POC flux at 2000 m under the RCP8.5 future projection. Published 2017. This article is a US Government work and is in the public domain in the USA.
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资源类型: 期刊论文
标识符: http://119.78.100.158/handle/2HF3EXSE/77726
Appears in Collections:气候变化事实与影响

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作者单位: Program in Atmospheric and Oceanic Sciences, Princeton University, Princeton, NJ, United States; National Oceanic and Atmospheric Administration/Geophysical Fluid Dynamics Laboratory, Princeton, NJ, United States

Recommended Citation:
Laufkötter C,, John J,G,et al. Temperature and oxygen dependence of the remineralization of organic matter[J]. Global Biogeochemical Cycles,2017-01-01,31(7)
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