LABORATORY SIMULATION OF AN OXIDIZING PERTURBATION IN A DEEP GRANITE ENVIRONMENT

dc.contributor.authorTrotignon L.
dc.contributor.authorMichaud V.
dc.contributor.authorLartigue J.E.
dc.contributor.authorAmbrosi J.P.
dc.contributor.authorEisenlohr L.
dc.contributor.authorGriffault L.
dc.contributor.authorde Combarieu M.
dc.contributor.authorDaumas S.
dc.date.accessioned2021-04-19T03:33:14Z
dc.date.available2021-04-19T03:33:14Z
dc.date.issued2002
dc.description.abstractAn experiment designed to study oxidizing perturbations in deep crystalline rock, a potential host for nuclear waste disposal, was conducted. This experiment simulated a fracture surface in contact with circulating groundwater, in which dissolved oxygen was injected periodically. Major physicochemical and biological parameters were monitored during this 1-yr experiment. Modeling of the results indicates that the kinetics of oxygen uptake may be represented by a simple steady-state rate law combining enzymatic catalysis (Monod) and a first-order rate law. Combined chemical and biological data demonstrate the coupling of organic/inorganic processes during the uptake of dissolved oxygen and the progressive return to reducing conditions. Timescales for these stages are discussed. Experimental results also suggest that iron-reducing bacteria, which are robust and well-adapted microorganisms, play a key role in these interfacial processes. These results show that an operational definition of the ''redox buffering capacity'' in a granitic medium cannot ignore the effect of bacteria and therefore the controls on bacterial substrates (organic carbon, H2, CH4, CO2).
dc.identifierhttps://www.elibrary.ru/item.asp?id=1096733
dc.identifier.citationGeochimica et Cosmochimica Acta, 2002, 66, 14, 2583-2601
dc.identifier.issn0016-7037
dc.identifier.urihttps://repository.geologyscience.ru/handle/123456789/28063
dc.titleLABORATORY SIMULATION OF AN OXIDIZING PERTURBATION IN A DEEP GRANITE ENVIRONMENT
dc.typeСтатья

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