Mathematics – Logic
Scientific paper
Feb 2004
adsabs.harvard.edu/cgi-bin/nph-data_query?bibcode=2004georl..3103304a&link_type=abstract
Geophysical Research Letters, Volume 31, Issue 3, CiteID L03304
Mathematics
Logic
6
Global Change: Biogeochemical Processes (4805), Global Change: Oceans (4203), Oceanography: Biological And Chemical: Benthic Processes/Benthos, Oceanography: Biological And Chemical: Carbon Cycling, Oceanography: Biological And Chemical: Modeling
Scientific paper
The biological pump affects atmospheric CO2 levels and fuels most heterotrophic activity in the deep ocean. The efficiency of this pump depends on the rate of carbon fixation, export out of the euphotic zone and the depth of respiration. Here we study the depth dependence of respiration patterns, hence particulate carbon flux, using a compiled data set of sediment oxygen consumption rates. We show that the depth relationship can best be described by a double exponential model. For the upper part of the ocean, our resulting equation is similar to previous flux-depth relationships but predicted fluxes are significantly larger in deeper waters. This implies a more efficient biological pump. Total oceanic respiration below the shelf break (200 m) is estimated to be 827 Tmol O2 yr-1.
Andersson Henrik J.
Heip Carlo
Herman Peter M. J.
Middelburg Jack J.
Soetaert Karline
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