The export and fate of organic matter in the ocean: New constraints from combining satellite and oceanographic tracer observations
Tim DeVries, Thomas Weber
Abstract
Tim DeVries, Thomas Weber
Abstract
The ocean's biological pump transfers carbon from the surface euphotic zone into the deep ocean, reducing the atmospheric CO 2 concentration. Despite its climatic importance, there are large uncertainties in basic metrics of the biological pump. Previous estimates of the strength of the biological pump, as measured by the amount of organic carbon exported from the euphotic zone, range from about 4 to 12 Pg C yr −1 . The fate of exported carbon, in terms of how efficiently it is transferred into the deep ocean, is even more uncertain. Here we present a new model of the biological pump that assimilates satellite and oceanographic tracer observations to constrain rates and patterns of organic matter production, export, and remineralization in the ocean. The data‐assimilated model predicts a global particulate organic carbon (POC) flux out of the euphotic zone of ∼9 Pg C yr −1 . The particle export ratio (the ratio of POC export to net primary production) is highest at high latitudes and lowest at low latitudes, but low‐latitude export is greater than predicted by previous models, in better agreement with observed patterns of long‐term carbon export. Particle transfer efficiency ( T eff ) through the mesopelagic zone is controlled by temperature and oxygen, with highest T eff for high‐latitude regions and oxygen minimum zones. In contrast, T eff in the deep ocean (below 1000 m) is controlled by particle sinking speed, with highest deep ocean T eff below the subtropical gyres. These results emphasize the utility of both remote sensing and oceanographic tracer observations for constraining the operation of the biological pump.
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The ocean's biological pump transfers carbon from the surface euphotic zone into the deep ocean, reducing the atmospheric CO 2 concentration. Despite its climatic importance, there are large uncertainties in basic metrics of the biological pump. Previous estimates of the strength of the biological pump, as measured by the amount of organic carbon exported from the euphotic zone, range from about 4 to 12 Pg C yr −1 . The fate of exported carbon, in terms of how efficiently it is transferred into the deep ocean, is even more uncertain. Here we present a new model of the biological pump that assimilates satellite and oceanographic tracer observations to constrain rates and patterns of organic matter production, export, and remineralization in the ocean. The data‐assimilated model predicts a global particulate organic carbon (POC) flux out of the euphotic zone of ∼9 Pg C yr −1 . The particle export ratio (the ratio of POC export to net primary production) is highest at high latitudes and lowest at low latitudes, but low‐latitude export is greater than predicted by previous models, in better agreement with observed patterns of long‐term carbon export. Particle transfer efficiency ( T eff ) through the mesopelagic zone is controlled by temperature and oxygen, with highest T eff for high‐latitude regions and oxygen minimum zones. In contrast, T eff in the deep ocean (below 1000 m) is controlled by particle sinking speed, with highest deep ocean T eff below the subtropical gyres. These results emphasize the utility of both remote sensing and oceanographic tracer observations for constraining the operation of the biological pump.
Key concepts: Photic zone, Biological pump, Ocean gyre, Mesopelagic zone, Environmental science, Deep sea, Oceanography, TRACER