Chemistry of sediment profile GeoB4906

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Main Authors: Pfeifer, Kerstin, Hensen, Christian, Adler, M, Wenzhöfer, Frank, Weber, Bettina, Schulz, Horst D
Format: Dataset Open Access
Language:en
Published: PANGAEA 2002
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author Pfeifer, Kerstin
Hensen, Christian
Adler, M
Wenzhöfer, Frank
Weber, Bettina
Schulz, Horst D
author_facet Pfeifer, Kerstin
Hensen, Christian
Adler, M
Wenzhöfer, Frank
Weber, Bettina
Schulz, Horst D
collection Datos científicos de ciencias marinas y ambientales
contents Mineralization of organic matter and the subsequent dissolution of calcite were simulated for surface sediments of the upper continental slope off Gabon by using microsensors to measure O2, pH, pCO2 and Ca2+ (in situ), pore-water concentration profiles of NO3-, NH4+, Fe2+, and Mn2+ and SO42- (ex situ), as well as sulfate reduction rates derived from incubation experiments. The transport and reaction model CoTReM was used to simulate the degradation of organic matter by O2, [NO3]-, Fe(OH)3 and [SO4]2-, reoxidation reactions involving Fe2+ and Mn2+, and precipitation of FeS. Model application revealed an overall rate of organic matter mineralization amounting to 50 µmol C cm**-2 yr**-1, of which 77% were due to O2, 17% to [NO3]- and 3% to Fe(OH)3 and 3% to [SO4]2-. The best fit for the pH profile was achieved by adapting three different dissolution rate constants of calcite ranging between 0.01 and 0.5% d-1 and accounting for different calcite phases in the sediment. A reaction order of 4.5 was assumed in the kinetic rate law. A CaCO3 flux to the sediment was estimated to occur at a rate of 42 g m**-2 yr**-1 in the area of equatorial upwelling. The model predicts a redissolution flux of calcite amounting to 36 g m**-2 yr**-1, thus indicating that ~90% of the calcite flux to the sediment is redissolved.
format Dataset Open Access
id pangaea_https___doi_org_10_1594_PANGAEA_736081
institution PANGAEA
language en
publishDate 2002
publisher PANGAEA
record_format pangaea
spellingShingle Chemistry of sediment profile GeoB4906
Pfeifer, Kerstin
Hensen, Christian
Adler, M
Wenzhöfer, Frank
Weber, Bettina
Schulz, Horst D
GeoB; GeoB4906-4; GeoB4906-6; Geosciences, University of Bremen; M41/1; Meteor (1986); MUC; MultiCorer; off Gabun; PROFILUR; PROFILUR Lander
Mineralization of organic matter and the subsequent dissolution of calcite were simulated for surface sediments of the upper continental slope off Gabon by using microsensors to measure O2, pH, pCO2 and Ca2+ (in situ), pore-water concentration profiles of NO3-, NH4+, Fe2+, and Mn2+ and SO42- (ex situ), as well as sulfate reduction rates derived from incubation experiments. The transport and reaction model CoTReM was used to simulate the degradation of organic matter by O2, [NO3]-, Fe(OH)3 and [SO4]2-, reoxidation reactions involving Fe2+ and Mn2+, and precipitation of FeS. Model application revealed an overall rate of organic matter mineralization amounting to 50 µmol C cm**-2 yr**-1, of which 77% were due to O2, 17% to [NO3]- and 3% to Fe(OH)3 and 3% to [SO4]2-. The best fit for the pH profile was achieved by adapting three different dissolution rate constants of calcite ranging between 0.01 and 0.5% d-1 and accounting for different calcite phases in the sediment. A reaction order of 4.5 was assumed in the kinetic rate law. A CaCO3 flux to the sediment was estimated to occur at a rate of 42 g m**-2 yr**-1 in the area of equatorial upwelling. The model predicts a redissolution flux of calcite amounting to 36 g m**-2 yr**-1, thus indicating that ~90% of the calcite flux to the sediment is redissolved.
title Chemistry of sediment profile GeoB4906
topic GeoB; GeoB4906-4; GeoB4906-6; Geosciences, University of Bremen; M41/1; Meteor (1986); MUC; MultiCorer; off Gabun; PROFILUR; PROFILUR Lander
url https://doi.org/10.1594/PANGAEA.736081