微生物燃料电池在水与废水脱氮方面的研究进展
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  • 英文篇名:Research progress on removal of nitrogen in water and wastewater by microbial fuel cell
  • 作者:李文英 ; 刘玉香 ; 任瑞鹏 ; 吕永康
  • 英文作者:LI Wenying;LIU Yuxiang;REN Ruipeng;Lü Yongkang;Key Laboratory of Coal Science and Technology, Ministry of Education and Shanxi Province, Taiyuan University of Technology;Department of Environmental Engineering, Shanxi University;
  • 关键词:微生物燃料电池 ; 含氮水与废水 ; 脱氮 ; 电化学 ; 能量回收 ; 催化
  • 英文关键词:microbial fuel cell;;nitrogen-containing water and wastewater;;nitrogen removal;;electrochemistry;;energy recovery;;catalysis
  • 中文刊名:HGJZ
  • 英文刊名:Chemical Industry and Engineering Progress
  • 机构:太原理工大学煤科学与技术教育部和山西省重点实验室;山西大学环境工程系;
  • 出版日期:2019-02-05
  • 出版单位:化工进展
  • 年:2019
  • 期:v.38;No.329
  • 基金:国家自然科学基金(51778397);; 2017年山西省博士研究生创新项目(2017BY063);; 山西省重点研发计划(国际合作)(201603D421040);; 国家重点研发计划(2016YFB0600502);; 山西省回国留学人员科研资助项目(2016-033)
  • 语种:中文;
  • 页:HGJZ201902047
  • 页数:10
  • CN:02
  • ISSN:11-1954/TQ
  • 分类号:393-402
摘要
近年来,使用微生物燃料电池(MFC)处理含氮水与废水受到广泛关注,在脱除水与废水中氮元素污染的同时,回收部分能量,克服了传统含氮废水处理高能耗的缺陷。本文在微生物脱氮技术的基础上,综合国内外相关研究文献,简述了MFC处理含氮水与废水研究的最新进展,系统总结了4种不同形式的脱氮MFC,主要包括反硝化脱氮MFC、硝化脱氮MFC、同步硝化反硝化脱氮MFC以及厌氧氨氧化脱氮MFC,详细介绍了各种脱氮形式MFC的产电和脱氮性能以及适用条件,分析了每种脱氮MFC的脱氮产电机理以及影响因素(包括MFC运行参数、外接电阻、电极材料以及MFC构型等);最后提出了未来MFC在处理含氮水与废水方面的主要研究方向:开发新型性价比高的电极催化材料及膜材料,优化运行条件,提高产电生物膜的稳定性以及进一步细致探究不同形式的脱氮产电机理等,从而扩大运行规模。
        In recent years, the nitrogen removal from water and wastewater with microbial fuel cell(MFC) has received more and more attention because of the nitrogen removal accompanied with the part recovery of energy, which overcomes the defect of high energy consumption in conventional biological nutrientremoval. Based on the technology of microbial denitrification and relevant research literatures, this paperreviewed latest research progress and current situation of nitrogen removal with MFC. Four different formsof MFC in nitrogen-containing water and wastewater treatment were summarized, includingdenitrification-MFC, nitrification-MFC, simultaneous nitrification and denitrification-MFC andanammox-MFC. The performance of power out and nitrogen removal and applicable conditions were described in detail. In addition, the mechanism and influence factors(such as operating conditions,external resistance,electrode materials and configuration of MFC)of nitrogen removal and electricity production were analyzed.At last,it was pointed out the main research direction for nitrogen removal with MFC in the future as follows:developing new cost-effective electrocatalytic electrode materials and membrane materials,optimizing operation conditions and improving the stability of electricity generation biofilms to expand the scale of operation.
引文
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