Towards the EDGE: Early diagenetic global explanation. A model depicting the early diagenesis of organic matter, O sub 2 , NO sub 3 , Mn, and PO sub 4

The ultimate fate of particles in aquatic environments is their burial and transformation in surficial sediments. There is an increasing need to relate quantitatively particle fluxes in the water column to the material recycled or preserved in the sediment. For this purpose, a transport-reaction mod...

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Veröffentlicht in:Geochimica et cosmochimica acta 1991-09, Vol.55:9
Hauptverfasser: Rabouille, C., Gaillard, J.F.
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description The ultimate fate of particles in aquatic environments is their burial and transformation in surficial sediments. There is an increasing need to relate quantitatively particle fluxes in the water column to the material recycled or preserved in the sediment. For this purpose, a transport-reaction model (EDGE) that represents the early diagenetic processes occurring in surficial sediments has been designed. This model uses the incoming flux of particulate matter and the overlying water composition in order to obtain simulated concentration profiles of chemical species in the bulk sediment and interstitial waters. It consists of a set of coupled nonlinear differential equations representing the oxidation of Particulate Organic Matter (POM) by a continuous sequence of electron acceptors (i.e., O{sub 2}, NO{sub 3}{sup {minus}}, MnO{sub 2}; in its preset state). The distribution of the concentrations of six components: POM, O{sub 2}, NO{sub 3}{sup {minus}}, MnO{sub 2}, Mn{sup 2+}, and {Sigma}PO{sub 4} are currently calculated. The Monod rate law has been used for representing the mineralization of POM coupled with the consumption of oxidants, and the sequence of oxidation of organic matter is represented using an inhibition function. The distributions with depth of the concentrations of the six chemical compounds are presented for different fluxes of POM at steady-state. These calculations show that the preservation of organic carbon and the extent of the mineralization processes are very sensitive to the organic carbon rain rate. For constant fluxes of POM and MnO{sub 2} arriving at the sediment water interface, the effect of an increasing sedimentation rate, as it might be produced by an augmentation of the detrital flux, is assessed on carbon preservation.
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It consists of a set of coupled nonlinear differential equations representing the oxidation of Particulate Organic Matter (POM) by a continuous sequence of electron acceptors (i.e., O{sub 2}, NO{sub 3}{sup {minus}}, MnO{sub 2}; in its preset state). The distribution of the concentrations of six components: POM, O{sub 2}, NO{sub 3}{sup {minus}}, MnO{sub 2}, Mn{sup 2+}, and {Sigma}PO{sub 4} are currently calculated. The Monod rate law has been used for representing the mineralization of POM coupled with the consumption of oxidants, and the sequence of oxidation of organic matter is represented using an inhibition function. The distributions with depth of the concentrations of the six chemical compounds are presented for different fluxes of POM at steady-state. These calculations show that the preservation of organic carbon and the extent of the mineralization processes are very sensitive to the organic carbon rain rate. For constant fluxes of POM and MnO{sub 2} arriving at the sediment water interface, the effect of an increasing sedimentation rate, as it might be produced by an augmentation of the detrital flux, is assessed on carbon preservation.</abstract><cop>United States</cop><doi>10.1016/0016-7037(91)90369-G</doi></addata></record>
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language eng
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source Elsevier ScienceDirect Journals
subjects 580000 - Geosciences
CARBON CYCLE
CHEMICAL COMPOSITION
CHEMISTRY
COMPUTERIZED SIMULATION
DIAGENESIS
GEOCHEMISTRY
GEOLOGIC MODELS
GEOSCIENCES
GROUND WATER
HYDROGEN COMPOUNDS
INTERFACES
INTERSTITIAL WATER
KINETICS
MATHEMATICAL MODELS
MATTER
MINERAL CYCLING
ORGANIC MATTER
OXYGEN COMPOUNDS
REACTION KINETICS
SEDIMENT-WATER INTERFACES
SEDIMENTS
SIMULATION
WATER
WATER CHEMISTRY
title Towards the EDGE: Early diagenetic global explanation. A model depicting the early diagenesis of organic matter, O sub 2 , NO sub 3 , Mn, and PO sub 4
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