期刊文献+

双圆筒型微生物燃料电池处理有机废水的应用 被引量:1

Application of Double-cylinder Microbial Fuel Cell to Treating Organic Wastewater
下载PDF
导出
摘要 文章研究设计了一个无介体的双筒型微生物燃料电池,并利用该电池对猪场模拟废水和实际废水进行处理。文章较为系统地研究了DCMFC的启动特性,并对该过程中COD处理效率和产电能力等各项指标进行了评估与分析。结果表明,DCMFC处理模拟猪场废水和实际废水均能得到较好的效果,COD处理效率分别达77.83%和73.26%,库仑回收率分别达18.89%和21.49%,电池效率分别达39.84%和53.36%,输出功率分别达3.58 mW(143.2 mW/m)2和4.36 mW(174.4 mW/m)2,并获得了30Ω左右的较小内阻值。猪场模拟废水的底物COD去除率和COD浓度随时间变化的规律可以用ExpDec1模型来进行描述,拟合相关系数分别达0.993 28和0.976 56。同样实际猪场废水的底物COD去除率和COD浓度随时间变化的规律也可以用ExpDec1模型来进行描述,拟合相关系数分别达0.996 83和0.997 82。对DCMFC进行极化曲线测试中,该装置可获得最大输出功率3.8 mW(PA=152 mW/m2,I=9.75 mA),拟合开路电压E=704.67 mV,内阻Ri=31.91Ω。。 A bench scale device of mediator-free double-cylinder microbial fuel cell(MFC) designed by the author was set up for treating simulated and real streams of pig-farm wastewater.COD removal from the wastewater by the experimental MFC device was more than 73%(both for the simulated and the real),and ExpDec1 model was used to depict change of COD substrate and decreasing of COD concentration.Meanwhile the MFC device yielded electrical power of 3.58 mW for the simulated and 4.36 mW for the real wastewater,respectively.Besides,the MFC had a rather small internal resistance of around 30 Ω,and the result of polarization curve test on the double-cylinder MFC showed the maximal output power could reach 3.8 mW with the fitting internal resistance of 31.91 Ω.
出处 《环境科学与技术》 CAS CSCD 北大核心 2013年第3期93-98,共6页 Environmental Science & Technology
基金 "十一五"国家科技支撑计划重点项目-<鄱阳湖生态保护与资源利用研究>项目子课题:水污染控制及水质保护技术研究与示范(2007BAB23C02)
关键词 微生物燃料电池 产电性能 降解规律 极化曲线 猪场废水 microbial fuel cell(MFC) electricity production performance degradation rule polarization curve pig-farm wastewater
  • 相关文献

参考文献22

  • 1Oh S, Logan B. Proton exchange membrane and electrode surface areas as factors that affect power generation in mi- crobial fuel ceUs[J]. Applied & Environmental Microbiolo- gy, 2006, 70 (2): 162-169.
  • 2Min B, Logan B E. Continuous electricity generation from domestic wastewater and organic substrates in a fiat plate microbial fuel cell[J]. Environmental Science and Technolo- gy, 2004, 38(21): 5809-5814.
  • 3Bradley R R, Ricky R, Brenda L. A miniature microbial fuel cell operating with an aerobic anode chamber[J]. Journal of Power Sources, 2007, 165: 591-597.
  • 4曹效鑫,梁鹏,黄霞.“三合一”微生物燃料电池的产电特性研究[J].环境科学学报,2006,26(8):1252-1257. 被引量:66
  • 5刘晶晶,孙永明,孔晓英,李连华,李颖,田沈,杨秀山,袁振宏.微生物燃料电池中底物的研究进展[J].环境科学与技术,2011,34(6):104-108. 被引量:7
  • 6Min B, Cheng S, Logan B E. Electricity generation using membrane and salt bridge microbial fuel cells[J]. Water Re- search, 2005, 39, 942-952.
  • 7冯玉杰,王鑫,李贺,任南琪.乙酸钠为基质的微生物燃料电池产电过程[J].哈尔滨工业大学学报,2007,39(12):1890-1894. 被引量:18
  • 8Fan Y Z, Hu H Q, Liu H. Sustainable power generation in microbial fuel cells using bicarbonate buffer and proton transfer mechanisms[J].Environmental Science and Technol- ogy, 2007, 41: 8154-8158.
  • 9黄霞,梁鹏,曹效鑫,范明志.无介体微生物燃料电池的研究进展[J].中国给水排水,2007,23(4):1-6. 被引量:46
  • 10Jadhav G S, Ghangrekar M M. Performance of microbial fuel cell subject to variation in pH, temperature, external load and substrate concentration[J]. Bioresource Technology,2009,100, 717-723.

二级参考文献127

共引文献148

同被引文献3

引证文献1

二级引证文献3

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部