Rahman Atikur, Borhan Md Saidul, Rahman Shafiqur
Department of Agricultural and Biosystems Engineering, North Dakota State University, Fargo, ND 58108, USA E-mail:
Water Sci Technol. 2018 Jan;77(1-2):387-397. doi: 10.2166/wst.2017.549.
Bioelectricity generation from biodegradable compounds using microbial fuel cells (MFCs) offers an opportunity for simultaneous wastewater treatment. This study evaluated the synergy of electricity generation by the MFC while reducing pollutants from sugar beet processing wastewater (SBPW). A simple dual-chamber MFC was constructed with inexpensive materials without using catalysts. Raw SBPW was diluted to several concentrations (chemical oxygen demand (COD) of 505 to 5,750 mg L) and fed as batch-mode into the MFC without further modification. A power density of 14.9 mW m as power output was observed at a COD concentration of 2,565 mg L. Coulombic efficiency varied from 6.21% to 0.73%, indicating diffusion of oxygen through the cation exchange membrane and other methanogenesis and fermentation processes occurring in the anode chamber. In this study, >97% of the COD and up to 100% of the total suspended solids removals were observed from MFC-treated SBPW. Scanning electron microscopy of anode indicated that a diverse community of microbial consortia was active for electricity generation and wastewater treatment. This study demonstrated that SBPW can be used as a substrate in the MFC to generate electricity as well as to treat for pollutant removal.
利用微生物燃料电池(MFC)从可生物降解化合物中产生生物电为同步废水处理提供了契机。本研究评估了MFC发电的协同作用,同时减少甜菜加工废水(SBPW)中的污染物。使用廉价材料构建了一个简单的双室MFC,未使用催化剂。将原始SBPW稀释至几种浓度(化学需氧量(COD)为505至5750 mg/L),并以分批模式进料到MFC中,无需进一步改性。在COD浓度为2565 mg/L时,观察到功率输出为14.9 mW/m²的功率密度。库仑效率在6.21%至0.73%之间变化,表明氧气通过阳离子交换膜扩散以及阳极室中发生的其他甲烷生成和发酵过程。在本研究中,MFC处理后的SBPW中COD去除率>97%,总悬浮固体去除率高达100%。阳极的扫描电子显微镜表明,多种微生物群落对发电和废水处理具有活性。本研究表明,SBPW可作为MFC中的底物用于发电以及处理污染物去除。