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Recycling and burial of biogenic silica in an open margin oxygen minimum zone

Authors :
Dale, Andrew W.
Paul, Mareike
Clemens, David
Scholz, Florian
Schroller-Lomnitz, Ulrike
Wallmann, Klaus
Geilert, Sonja
Hensen, Christian
Plass, Anna
Liebetrau, Volker
Grasse, Patricia
Sommer, Stefan
Dale, Andrew W.
Paul, Mareike
Clemens, David
Scholz, Florian
Schroller-Lomnitz, Ulrike
Wallmann, Klaus
Geilert, Sonja
Hensen, Christian
Plass, Anna
Liebetrau, Volker
Grasse, Patricia
Sommer, Stefan
Publication Year :
2021

Abstract

An extensive data set of biogenic silica (BSi) fluxes is presented for the Peruvian oxygen minimum zone (OMZ) at 11ºS and 12ºS. Each transect extends from the shelf to the upper slope (∼1000 m) and dissects the permanently anoxic waters between ∼200 – 500m water depth. BSi burial (2100 mmol m‐2 yr‐1) and recycling fluxes (3300 mmol m‐2 yr‐1) were highest on the shelf with mean preservation efficiencies (34±15%) that exceed the global mean of 10 – 20%. BSi preservation was highest on the inner shelf (up to 56%), decreasing to 7% and 12% under anoxic waters and below the OMZ, respectively. The data suggest that the main control on BSi preservation is the rate at which reactive BSi is transported away from undersaturated surface sediments by burial and bioturbation to the underlying saturated sediment layers where BSi dissolution is thermodynamically and/or kinetically inhibited. BSi burial across the entire Peruvian margin between 3ºS to 15ºS and down to 1000m water depth is estimated to be 0.1 – 0.2 Tmol yr‐1; equivalent to 2 – 7% of total burial on continental margins. Existing global data permit a simple relationship between BSi rain rate to the seafloor and the accumulation of unaltered BSi, giving the possibility to reconstruct rain rates and primary production from the sediment archive in addition to benthic Si turnover in global models.

Details

Database :
OAIster
Notes :
text, text, English, English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1299457392
Document Type :
Electronic Resource
Full Text :
https://doi.org/10.1029.2020GB006583