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利用嗜温适度的培养物在搅拌釜式反应器中有效回收预处理废印刷电路板中的金属。

Recycling of metals from pretreated waste printed circuit boards effectively in stirred tank reactor by a moderately thermophilic culture.

作者信息

Xia Ming-Chen, Wang Ya-Ping, Peng Tang-Jian, Shen Li, Yu Run-Lan, Liu Yuan-Dong, Chen Miao, Li Jiao-Kun, Wu Xue-Ling, Zeng Wei-Min

机构信息

School of Minerals Processing and Bioengineering, Central South University, Changsha 410083, China.

School of Minerals Processing and Bioengineering, Central South University, Changsha 410083, China; Key Laboratory of Biometallurgy, Ministry of Education, Changsha 410083, China.

出版信息

J Biosci Bioeng. 2017 Jun;123(6):714-721. doi: 10.1016/j.jbiosc.2016.12.017. Epub 2017 Mar 20.

Abstract

To seek a feasible technique for processing waste printed circuit boards (PCBs), pretreatment of PCBs by table separation and further bioleached by moderate thermophiles in a stirred tank reactor were investigated. The shaking table separation, conducted after grinding and sieving of PCBs, produced two fractions: metal-rich parts (RPCBs), which is more suitable for pyrometallurgy process than untreated PCBs, and metal-poor parts (PPCBs) with only 8.83% metals was then bioleached by a mixed culture of moderate thermophiles effectively. After adaptation, the mixed culture could tolerate 80 g/L PPCBs. The bioleaching results showed that metals recovery was 85.23% Zn, 76.59% Cu and 70.16% Al in only 7 days. Trace Pb and Sn were detected in the leachate because of precipitating. The microorganism community structure was analyzed by amplified ribosomal DNA restriction analysis. Two moderately thermophilic bacteria species were identified as Leptospirillum ferriphilum and Acidithiobacillus caldus. Furthermore, uncultured Thermoplasmatales archaeon was also detected in the leaching system. It was also shown that moderate thermophiles revealed best bioleaching ability when compared with mesophiles and the mixture of mesophiles and moderate thermophiles. Finally, we designed a two-stage process model according to the present study to achieve semi-industrial waste PCBs recycling and economic feasibility analysis indicated that the process was profitable.

摘要

为寻求一种可行的废印刷电路板(PCBs)处理技术,研究了通过摇床分选对PCBs进行预处理,并在搅拌槽反应器中用嗜中温菌进行进一步生物浸出的方法。在对PCBs进行研磨和筛分后进行摇床分选,得到两个部分:富金属部分(RPCBs),与未处理的PCBs相比,它更适合火法冶金工艺;贫金属部分(PPCBs),其金属含量仅为8.83%,然后用嗜中温菌的混合培养物进行有效生物浸出。经过驯化后,该混合培养物能够耐受80 g/L的PPCBs。生物浸出结果表明,仅7天内金属回收率分别为:锌85.23%)、铜76.59%和铝70.16%。由于沉淀作用,在浸出液中检测到微量的铅和锡。通过扩增核糖体DNA限制性分析对微生物群落结构进行了分析。鉴定出两种嗜中温细菌为嗜铁钩端螺旋菌和嗜热嗜酸硫杆菌。此外,在浸出系统中还检测到未培养的热原体古菌。研究还表明,与嗜温菌以及嗜温菌和嗜中温菌的混合物相比,嗜中温菌具有最佳的生物浸出能力。最后,根据本研究设计了一个两阶段工艺模型,以实现半工业规模的废PCBs回收利用,经济可行性分析表明该工艺具有盈利性。

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