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首页> 外文期刊>Separation and Purification Technology >Recovery of metals in a double-stage continuous bioreactor for acidic bioleaching of printed circuit boards (PCBs)
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Recovery of metals in a double-stage continuous bioreactor for acidic bioleaching of printed circuit boards (PCBs)

机译:在印刷电路板的酸性生物反应器中回收金属,用于印刷电路板的酸性生物反应器(PCB)

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摘要

Many studies are now focusing on bioleaching methods to recover metals from WEEE. The efficiency of this process is highly dependent on microorganisms but also on the solid-liquid-gas mass transfer, which is controlled by the reactor design. In this study, bioleaching of comminuted spent printed circuit boards (PCBs) was performed in a stirred tank reactor operated in batch mode and in a double-stage continuous bioreactor. The metal dissolution kinetics were compared. The first stage of the continuous bioreactor was a bubble column in which a BRGM-KCC acidophilic consortium comprising Leptospirillum ferriphilum and Sulfobacillus benefaciens was used to oxidise Fe(II) into Fe(III). The resulting liquor was used to leach out metals contained in PCBs in the second stage of the bioreactor with mechanical stirring. The use of two distinct stages allowed the bacteria to adapt gradually to the PCBs and reach high dissolution yields, i.e. 96% Cu, 73% Ni, 85% Zn and 93% Co when 1% (w/v) PCB scraps were added into the bioleaching reactor, with a hydraulic residence time of 48 h. By using the double-stage bioreactor, the concentration of PCB scraps could be increased up to 1.8% (w/v) without reducing bioleaching performance. Biomass concentration in the second stage and adaptation of the microorganisms to the toxicity of the metals were sufficient for only the second stage to be used. Under these conditions, the dissolution kinetics were stable, even when iron was provided only by the comminuted PCBs.
机译:现在,许多研究专注于生物浸入方法,以回收来自WEEE的金属。该过程的效率高度依赖于微生物,而且依赖于微生物,还具有由反应器设计控制的固态气体传质。在该研究中,在以批量模式和双级连续生物反应器中操作的搅拌釜反应器中进行粉碎的废印刷电路板(PCB)的生物浸出。比较金属溶解动力学。连续生物反应器的第一阶段是泡柱,其中包含含有百分之唾液酸含量的BRGM-KCC嗜酸性联盟和磺嘧啶菌株酸钠将Fe(II)氧化成Fe(III)。使用机械搅拌,使用所得液体在生物反应器的第二阶段中含有PCB中含有的金属。使用两个不同的阶段允许细菌逐渐适应PCB,并达到高溶解产率,即96%Cu,73%Ni,85%Zn和93%的Co,加入1%(w / v)pcb废料中生物浸入反应器,液压停留时间为48小时。通过使用双级生物反应器,PCB废料的浓度可高达1.8%(w / v),而不降低生物浸出性能。在第二阶段的生物质浓度和微生物的适应性对金属的毒性仅用于仅使用的第二阶段。在这些条件下,即使仅由粉碎的PCB提供铁,溶出动力学也是稳定的。

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