首页> 外文期刊>Biodegradation >Modeling intrinsic bioremediation for interpret observable biogeochemical footprints of BTEX biodegradation: the need for fermentation and abiotic chemical processes.
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Modeling intrinsic bioremediation for interpret observable biogeochemical footprints of BTEX biodegradation: the need for fermentation and abiotic chemical processes.

机译:对固有生物修复进行建模以解释BTEX生物降解的可观察生物地球化学足迹:对发酵和非生物化学过程的需求。

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摘要

The intrinsic bioremediation of BTEX must be documented by the stoichiometric consumption and production of several other compounds, called 'footprints' of the biodegradation reaction. Although footprints of BTEX biodegradation are easy to identify from reaction stoichiometry, they can be confounded by the stepwise nature of the biodegradation reactions and by several abiotic chemical reactions that also produce or consume the footprints. In order to track the footprints for BTEX biodegradation, the following reactions need to be considered explicitly: (1) fermentation and methanogenesis as separate processes, (2) precipitation and dissolution of calcite, (3) precipitation and dissolution of amorphous iron monosulfide (FeS), (4) conversion of FeS into the thermodynamically stable pyrite (FeS2) with loss of sulfide and abiotic formation of H2, and (5) reductive dissolution of solid iron(III) by oxidation of sulfide. We critically review the research that underlies why these mechanisms must be included and how to describe them quantitatively. A companion manuscript develops and applies a mathematical model that includes these reactions.
机译:BTEX的固有生物修复作用必须通过化学计量消耗和几种其他化合物的生产来证明,这称为生物降解反应的“足迹”。尽管BTEX生物降解的足迹很容易从反应化学计量中识别出来,但它们可能会因生物降解反应的逐步性质以及也会产生或消耗足迹的几种非生物化学反应而混淆。为了跟踪BTEX生物降解的足迹,需要明确考虑以下反应:(1)作为独立过程的发酵和甲烷生成,(2)方解石的沉淀和溶解,(3)无定形单硫化铁(FeS)的沉淀和溶解),(4)将FeS转化为热力学稳定的黄铁矿(FeS2),并损失了硫化物和H2的非生物形成,以及(5)通过硫化物的氧化还原性分解了固态铁(III)。我们批判性地回顾了为什么必须包括这些机制以及如何定量描述它们的基础研究。配套手稿将开发并应用包括这些反应的数学模型。

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