Effects of electrode distance and mixing velocity on current density and methane production in an anaerobic digester equipped with a microbial methanogenesis cell

被引:23
作者
Park, Jun-Gyu [1 ]
Lee, Beom [1 ]
Shi, Peng [1 ]
Kim, Yonggeun [1 ]
Jun, Hang-Bae [1 ]
机构
[1] Chungbuk Natl Univ, Dept Environm Engn, Cheongju 361763, South Korea
基金
新加坡国家研究基金会;
关键词
Microbial methanogenesis cell (MMC); Mixing velocity; Electrode distance; Current density; Specific flux gradient; WASTE-WATER TREATMENT; POWER-GENERATION; FUEL-CELL; HYDROGEN-PRODUCTION; STAINLESS-STEEL; PERFORMANCE; MEMBRANE; REACTOR; CATHODES; ACETATE;
D O I
10.1016/j.ijhydene.2017.07.025
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The microbial methanogenesis cell (MMC) has been studied to enhance organic removal efficiency and methane production in an anaerobic digester (AD). However, its applicability remains limited without practical approaches to scale-up the design for commercialization. Internal resistance within MMC is closely related to the transfer of hydrogen ions between electrodes. We analyzed the effects of various electrode distances and mixing velocities on the current density and methane production in a single AD equipped with an MMC. As the distance between electrodes increased from 1 cm to 5 cm, methane production and current density decreased to 51% and 92%, respectively. Although an increase in mixing velocity decreased the internal resistance, this effect was not significant below a certain distance. For larger distances, an increase in mixing velocity not only increased current density by a factor of approximately 2.5, but also enhanced methane production by a factor of approximately 1.4. (C) 2017 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:27732 / 27740
页数:9
相关论文
共 32 条
[1]   Effect of cell-to-cell distance in segmented-in-series solid oxide fuel cells [J].
An, Yong-Tae ;
Ji, Mi-Jung ;
Hwang, Hae-Jin ;
Park, S. Eugene ;
Choi, Byung-Hyun .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2015, 40 (05) :2320-2325
[2]   A method for high throughput bioelectrochemical research based on small scale microbial electrolysis cells [J].
Call, Douglas F. ;
Logan, Bruce E. .
BIOSENSORS & BIOELECTRONICS, 2011, 26 (11) :4526-4531
[3]   High Surface Area Stainless Steel Brushes as Cathodes in Microbial Electrolysis Cells [J].
Call, Douglas F. ;
Merrill, Matthew D. ;
Logan, Bruce E. .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2009, 43 (06) :2179-2183
[4]   Increased power generation in a continuous flow MFC with advective flow through the porous anode and reduced electrode spacing [J].
Cheng, S ;
Liu, H ;
Logan, BE .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2006, 40 (07) :2426-2432
[5]  
Cheng S, 2007, P NATL ACAD SCI USA, V104, P18871, DOI 10.1073/pnas.0706379104
[6]   High hydrogen production rate of microbial electrolysis cell (MEC) with reduced electrode spacing [J].
Cheng, Shaoan ;
Logan, Bruce E. .
BIORESOURCE TECHNOLOGY, 2011, 102 (03) :3571-3574
[7]   Minimizing losses in bio-electrochemical systems: the road to applications [J].
Clauwaert, Peter ;
Aelterman, Peter ;
Pham, The Hai ;
De Schamphelaire, Liesje ;
Carballa, Marta ;
Rabaey, Korneel ;
Verstraete, Willy .
APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2008, 79 (06) :901-913
[8]   Internal resistance of microfluidic microbial fuel cell: Challenges and potential opportunities [J].
ElMekawy, Ahmed ;
Hegab, Hanaa M. ;
Dominguez-Benetton, Xochitl ;
Pant, Deepak .
BIORESOURCE TECHNOLOGY, 2013, 142 :672-682
[9]   Enhanced production of methane from waste activated sludge by the combination of high-solid anaerobic digestion and microbial electrolysis cell with iron-graphite electrode [J].
Feng, Yinghong ;
Zhang, Yaobin ;
Chen, Shuo ;
Quan, Xie .
CHEMICAL ENGINEERING JOURNAL, 2015, 259 :787-794
[10]  
Gulliver JS, 2007, INTRODUCTION TO CHEMICAL TRANSPORT IN THE ENVIRONMENT, P1, DOI 10.2277/ 052185850X