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A modelling approach to assess the long-term stability of a novel microbial/electrochemical system for the treatment of acid mine drainage

机译:一种评估新型微生物/电化学系统用于酸性矿山排水的长期稳定性的建模方法

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Microbial electrochemical processes have potential to remediate acid mine drainage (AMD) wastewaters which are highly acidic and rich in sulfate and heavy metals, without the need for extensive chemical dosing. In this manuscript, a novel hybrid microbial/electrochemical remediation process which uses a 3-reactor system – a precipitation vessel, an electrochemical reactor and a microbial electrochemical reactor with a sulfate-reducing biocathode – was modelled. To evaluate the long-term operability of this system, a dynamic model for the fluxes of 140 different ionic species was developed and calibrated using laboratory-scale experimental data. The model identified that when the reactors are operating in the desired state, the coulombic efficiency of sulfate removal from AMD is high (91%). Modelling also identified that a periodic electrolyte purge is required to prevent the build-up of Cl ~(?) ions in the microbial electrochemical reactor. The model furthermore studied the fate of sulfate and carbon in the system. For sulfate, it was found that only 29% can be converted into elemental sulfur, with the rest complexating with metals in the precipitation vessel. Finally, the model shows that the flux of inorganic carbon under the current operational strategy is insufficient to maintain the autotrophic sulfate-reducing biomass. The modelling approach demonstrates that a change in system operational strategies plus close monitoring of overlooked ionic species (such as Cl ~(?) and HCO _(3) ~(?) ) are key towards the scaling-up of this technology.
机译:微生物电化学工艺具有补救酸性高,富含硫酸盐和重金属的酸性矿山排水(AMD)废水的潜力,而无需进行大量的化学计量。在本手稿中,对使用3-反应器系统的新型微生物/电化学混合修复工艺进行了建模-沉淀池,电化学反应器和带有硫酸盐还原生物阴极的微生物电化学反应器-。为了评估该系统的长期可操作性,使用实验室规模的实验数据开发并校准了140种不同离子种类通量的动态模型。该模型确定,当反应堆在所需状态下运行时,从AMD去除硫酸盐的库仑效率很高(91%)。模型还确定了需要定期清除电解质以防止微生物电化学反应器中Cl〜(α)离子的积聚。该模型还研究了系统中硫酸盐和碳的命运。对于硫酸盐,发现只有29%的硫可以转化为元素硫,其余的则与沉淀容器中的金属络合。最后,该模型表明,在当前操作策略下,无机碳的通量不足以维持自养硫酸盐还原生物量。建模方法表明,系统操作策略的变化以及对被忽略的离子种类(例如Cl〜(?)和HCO _(3)〜(?))的密切监视是扩大该技术的关键。

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