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Microbial Fuel Cells Coupled with the Bioleaching Technique that Enhances the Recovery of Cu from the Secondary Mine Tailings in the Bio-Electrochemical System

机译:微生物燃料电池与生物浸提技术相结合,可增强生物电化学系统中次生尾矿中铜的回收率

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Improper management of dumped tailings not only causes a potential waste of resources but also poses a direct threat to the lives of local residents. A dual-chamber microbial fuel cell (MFC) combining with the bioleaching technique was used in the study to extract Cu from the secondary mine tailings at a fed-batch scale. A mixed culture of acidophilic bacteria was enriched and isolated from the acidic drainage in a copper mine. The effects of the pulp densities and initial pH on both the bio-electronic performances and the recoveries of Cu on bio-electrochemical platform were comparatively investigated. An appropriate increase in the pulp densities and a suitable decrease in the initial pH facilitated increases in power generations and enhanced the recoveries of Cu from the tailing samples. The maximum power density of 30.54 mW/m(2) was achieved in the coupling system with the coulomb efficiency of 4.52%, and the internal resistance of 166.58 omega being synchronously obtained. Correspondingly, the highest recovery efficiency of Cu of 78.72% was got in the two-dimensional tests under conditions including the pulp density (w/v) of 20% and the initial pH of 1.8. The electrochemical reduction and the chemical precipitation in MFCs were confirmed as two of main mechanisms in obviously influencing the recovery of Cu. (c) 2019 American Institute of Chemical Engineers Environ Prog, 38:e13146, 2019
机译:倾倒尾矿的管理不当,不仅可能造成资源浪费,而且直接威胁当地居民的生活。在研究中使用了双室微生物燃料电池(MFC)结合生物浸出技术,以补料分批规模从次生矿山尾矿中提取铜。嗜酸性细菌的混合培养物从铜矿山的酸性排水中富集并分离出来。对比研究了纸浆密度和初始pH值对生物电性能和铜在生物电化学平台上回收率的影响。纸浆密度的适当增加和初始pH值的适当降低促进了发电量的增加,并提高了从尾矿样品中回收Cu的能力。在耦合系统中实现了30.54 mW / m(2)的最大功率密度,库仑效率为4.52%,同时获得了166.58Ω的内部电阻。相应地,在纸浆密度(w / v)为20%,初始pH为1.8的条件下进行二维测试时,Cu的最高回收率达78.72%。 MFC中的电化学还原和化学沉淀被证实是明显影响Cu回收的两个主要机理。 (c)2019美国化学工程师学会Environ Prog,38:e13146,2019

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