Simultaneous electricity generation and pollutant removal in microbial fuel cell with denitrifying biocathode over nitrite

被引:53
作者
Li, Weiqing [1 ]
Zhang, Shaohui [1 ]
Chen, Gang [1 ]
Hua, Yumei [2 ]
机构
[1] Wuhan Univ Technol, Sch Civil Engn & Architecture, Wuhan 430070, Peoples R China
[2] Huazhong Agr Univ, Coll Resource & Environm Engn, Wuhan 430070, Peoples R China
关键词
Microbial fuel cell; Short-cut denitrification; Hydraulic retention time; Temperature; Buffer solution; SIMULTANEOUS NITRIFICATION; EXTERNAL RESISTANCE; POWER-GENERATION; DENITRIFICATION; PERFORMANCE; PH; TEMPERATURE; CARBON;
D O I
10.1016/j.apenergy.2014.04.015
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The influences of hydraulic retention time, temperature and free buffer on the performance of short-cut denitrifying microbial fuel cell were investigated after it was successfully started up using nitrite as the cathodic electron acceptor. The results revealed that a power density of 8.3 0.5 W 111-3 NC was obtained after 15 days operation. The desirable hydraulic retention time was found in this study to be 8 h, with a COD removal rate of 2.117 0.006 kg m-3 NC el and a total nitrogen removal rate of 0.041 0.002 kg m-3 NC d-1, respectively. It demonstrated that temperature had different effects on the electricity generation and pollutant removal performance of microbial fuel cell. The suitable temperature for power generation and pollutant removal was found to be 20 C and 25 C, respectively. Free buffer led to 50% decrease of both total nitrogen removal rate and power density of microbial fuel cell compared to that with phosphate buffer solution addition. The optimal total nitrogen removal rate obtained in the case with sodium azide addition (0.075 0.008 kg m-3 NC d-1) increased by 50% as compared to that without sodium azide addition. It suggested that abolishing oxygen or inhibiting nitrite oxidizing bacteria would favor nitrogen removal. (C) 2014 Elsevier Ltd. All rights reserved.
引用
收藏
页码:136 / 141
页数:6
相关论文
共 29 条
[1]   Loading rate and external resistance control the electricity generation of microbial fuel cells with different three-dimensional anodes [J].
Aelterman, Peter ;
Versichele, Mathias ;
Marzorati, Massimo ;
Boon, Nico ;
Verstraete, Willy .
BIORESOURCE TECHNOLOGY, 2008, 99 (18) :8895-8902
[2]  
American Public Health Association (APHA), 1992, STANDARD METHODS EXA
[3]   Biological denitrification in microbial fuel cells [J].
Clauwaert, Peter ;
Rabaey, Korneel ;
Aelterman, Peter ;
De Schamphelaire, Liesje ;
Ham, The Haip ;
Boeckx, Pascal ;
Boon, Nico ;
Verstraete, Willy .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2007, 41 (09) :3354-3360
[4]   Sustainable power generation in microbial fuel cells using bicarbonate buffer and proton transfer mechanisms [J].
Fan, Yanzhen ;
Hu, Hongqiang ;
Liu, Hong .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2007, 41 (23) :8154-8158
[5]   A polypyrrole/anthraquinone-2,6-disulphonic disodium salt (PPy/AQDS)-modified anode to improve performance of microbial fuel cells [J].
Feng, Chunhua ;
Ma, Le ;
Li, Fangbai ;
Mai, Hongjian ;
Lang, Xuemei ;
Fan, Shuanshi .
BIOSENSORS & BIOELECTRONICS, 2010, 25 (06) :1516-1520
[6]   Short-term effects of temperature and COD in a microbial fuel cell [J].
Gonzalez del Campo, A. ;
Lobato, J. ;
Canizares, P. ;
Rodrigo, M. A. ;
Fernandez Morales, F. J. .
APPLIED ENERGY, 2013, 101 :213-217
[7]   Application of bacterial biocathodes in microbial fuel cells [J].
He, Zhen ;
Angenent, Largus T. .
ELECTROANALYSIS, 2006, 18 (19-20) :2009-2015
[8]   Performance of microbial fuel cell subjected to variation in pH, temperature, external load and substrate concentration [J].
Jadhav, G. S. ;
Ghangrekar, M. M. .
BIORESOURCE TECHNOLOGY, 2009, 100 (02) :717-723
[9]   Performance of denitrifying microbial fuel cell subjected to variation in pH, COD concentration and external resistance [J].
Li, Jin-Tao ;
Zhang, Shao-Hui ;
Hua, Yu-Mei .
WATER SCIENCE AND TECHNOLOGY, 2013, 68 (01) :250-256
[10]  
Li Jin-tao, 2012, China Environmental Science, V32, P617