CIESC Journal ›› 2019, Vol. 70 ›› Issue (1): 242-250.DOI: 10.11949/j.issn.0438-1157.20180663

• Energy and environmental engineering • Previous Articles     Next Articles

Electrical performance of MFC-MEC coupling system and treatment of heavy metal wastewater containing cadmium

Lulu PAN(),Danjing WU,Weiping LIU()   

  1. Department of Environmental Engineering, Jiangsu University of Technology, Changzhou 213001, Jiangsu, China
  • Received:2018-06-19 Revised:2018-10-23 Online:2019-01-05 Published:2019-01-05
  • Contact: Weiping LIU

MFC-MEC耦合系统产电性能及处理含镉重金属废水的研究

潘璐璐(),吴丹菁,刘维平()   

  1. 江苏理工学院环境工程系,江苏 常州 213001
  • 通讯作者: 刘维平
  • 作者简介:潘璐璐(1993—),女,硕士研究生,<email>1911083253@qq.com</email>|刘维平(1965—),男,教授,<email>weiping@just.edu.cn</email>
  • 基金资助:
    江苏省自然科学基金项目(BK20131133);常州市科技计划(国际科技合作)项目(CZ20170020);江苏省研究生实践创新计划项目(SJCX17-0776)

Abstract:

The MFC-MEC coupling system was constructed by using anaerobic activated sludge as the anode species, sodium acetate simulated wastewater as the anode substrate, copper sulfate and potassium dichromate solutions as the microbial fuel cell (MFC) catholyte, artificially simulate heavy metal wastewater containing cadmium as microbial electrolytic cell (MEC) catholyte. The MFC was used to drive the MEC to realize the removal of Cd2+ in heavy metal wastewater containing cadmium. The effects of the MFC reactor volume, MFC stack, MEC electrode material, MEC catholyte pH on the electrical properties of the MFC-MEC coupled system and the treatment of heavy metal wastewater containing cadmium were investigated. The results show that the enlargement of MFC reaction volume could improve the electricity production performance, but at the same time it would also increase the internal resistance of MFC. With the increase of MFC volume, the removal rate of Cd2+ in MEC increased gradually, but at the same time, the removal rate of Cr6+ in MFC cathode decreased gradually; MFC stack could increase the voltage, the maximum output voltage was 1509 mV in series, and the removal rate of Cd2+ was 69.3%; when the titanium plate was used as the MEC electrode, the microorganism could effectively adhere to the anode surface, the removal rate of COD of the MFC anode was 85%, the removal rate of Cd2+ in the MEC was 51.5%; when the pH of MEC catholyte was 3—5, it was beneficial to the treatment of heavy metal wastewater containing cadmium, and the removal rate of Cd2+ was over 80%. By XRD analysis, the cathode reduction product of MEC is CdCO3.

Key words: bioreactors, coupling system, electrical performance, waste water, reduction, deposition

摘要:

以厌氧活性污泥为阳极菌种,乙酸钠为阳极底物,硫酸铜和重铬酸钾溶液为微生物燃料电池(MFC)阴极液,人工模拟含镉重金属废水为微生物电解池(MEC)阴极液,构建MFC-MEC耦合系统,利用MFC的产电驱动MEC运行,在不消耗外部能源的情况下,实现含镉重金属废水中Cd2+的去除。实验研究了MFC反应器容积、MFC堆栈、MEC电极材料、MEC阴极液pH对MFC-MEC耦合系统电性能及含镉重金属废水处理效果的影响。结果表明:MFC反应容积的扩大可以提高其产电性能,但与此同时会造成MFC的内阻升高,随着MFC容积的增加,MEC中Cd2+去除率逐渐增加,但同时MFC阴极Cr6+去除率逐渐下降;MFC堆栈可以提高工作组两端电压,串联时最大输出电压为1509 mV,Cd2+去除率为69.3%;以钛板作为MEC电极时,微生物能有效附着在阳极表面,MFC阳极COD去除率为85%,MEC中Cd2+去除率为51.5%;MEC阴极液pH在3~5时,有利于含镉重金属废水的处理,Cd2+去除率80%以上。经XRD分析,MEC阴极还原产物为CdCO3

关键词: 生物反应器, 耦合系统, 电性能, 废水, 还原, 沉积物

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