Li Zhongjian, Zhang Xingwang, Zeng Yuxuan, Lei Lecheng
Institute of Environmental Pollution Control Technologies, Xixi campus, Zhejiang University, Hangzhou 310028, PR China.
Bioresour Technol. 2009 May;100(9):2551-5. doi: 10.1016/j.biortech.2008.12.018. Epub 2009 Jan 20.
An overflow-type wetted-wall MFC (WWMFC) was developed to generate a stable voltage from acetate-based substrates. The maximum power density of 18.21 W/m(3) was obtained. The power generation showed a saturation-type relationship as a function of initial COD, with a maximum power density (P(max)) of 18.82 W/m(3) and a saturation constant (K(s)) of 227.4 mg/l. Forced air flowing through the cathode chamber had a negligible effect on power generation. Influent flow rate could greatly affect the power generation. The maximum power density was increased by 72.8% when the influent flow rate increased from 5 to 30 ml/min. In addition, increasing ionic strength did not affect the power density and internal resistance. Oxygen could be restrained to diffuse into the anode chamber effectively in the overflow-type WWMFC. And the overflow-type WWMFC could be scaled up conveniently in practical application.
开发了一种溢流型湿壁微生物燃料电池(WWMFC),以从基于醋酸盐的底物中产生稳定的电压。获得的最大功率密度为18.21 W/m³。发电显示出作为初始化学需氧量(COD)函数的饱和型关系,最大功率密度(P(max))为18.82 W/m³,饱和常数(K(s))为227.4 mg/l。强制空气流过阴极室对发电的影响可忽略不计。进水流量会极大地影响发电。当进水流量从5 ml/min增加到30 ml/min时,最大功率密度提高了72.8%。此外,增加离子强度不会影响功率密度和内阻。在溢流型WWMFC中,氧气可以有效地被抑制扩散到阳极室。并且溢流型WWMFC在实际应用中可以方便地扩大规模。