Performance evaluation of three constructed wetland-microbial fuel cell systems: wastewater treatment efficiency and electricity generation potential

被引:3
作者
Htet, Hsu Htet [1 ]
Dolphen, Rujira [2 ]
Jirasereeamornkul, Kamon [3 ]
Thiravetyan, Paitip [1 ]
机构
[1] King Mongkuts Univ Technol Thonburi, Sch Bioresources & Technol, Bangkok 10150, Thailand
[2] King Mongkuts Univ Technol Thonburi, Pilot Plant Dev & Training Inst, Bangkok 10150, Thailand
[3] King Mongkuts Univ Technol Thonburi, Dept Elect & Telecommun Engn, Bangkok 10140, Thailand
关键词
Constructed wetland; Microbial fuel cell; Electricity generation; Domestic wastewater; Echinodorus cordifolius; ECHINODORUS-CORDIFOLIUS L; REMOVAL; TECHNOLOGY; RETENTION; GLYCOL;
D O I
10.1007/s11356-023-29185-2
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Constructed wetlands (CWs) have proven to be effective and environmentally friendly for removing pollutants, while microbial fuel cells (MFCs) offer the potential for electricity generation. Thus, this study evaluated the performance of three CW-MFC systems (zigzag, single-column, and triple-column continuous) for domestic wastewater treatment and electricity generation. Results showed that parallel connection of CW-MFCs significantly improved power generation compared to series connection. Additionally, using three copper wires to connect carbon fiber felt electrodes demonstrated superior pollutant capture capabilities compared to a single copper wire. During the 14-day testing period, the single-column system achieved the highest power density of 5.55 mW m(-2), followed closely by the triple-column continuous system at 4.77 mW m(-2). In contrast, the zigzag system exhibited a lower power density of 2.49 mW m(-2). Interestingly, the implementation of facultative anaerobic conditions in the anode, along with the application of a plastic bag cover, facilitated the maintenance of anaerobic conditions in both the single-column and triple-column continuous systems. This resulted in increased power density and reduced internal resistance. In contrast, the zigzag system, with its larger surface area, aeration, and circulation, exhibited higher internal resistance and lower current dissipation. Despite its inferior electricity generation performance, the zigzag system demonstrated higher efficiency removal of chemical oxygen demand (COD), nitrate (NO3-), and phosphate (PO43-) than the single-column system. This can be attributed to the extended contact time, resulting in enhanced pollutant removal. Overall, the multi-column continuous system shows promise as a viable approach for simultaneous domestic wastewater treatment and electricity production, offering potential benefits for sustainable wastewater management.
引用
收藏
页码:96163 / 96180
页数:18
相关论文
共 56 条
[1]   Constructed wetlands for landfill leachate treatment: A review [J].
Bakhshoodeh, Reza ;
Alavi, Nadali ;
Oldham, Carolyn ;
Santos, Rafael M. ;
Babaei, Ali Akbar ;
Vymazal, Jan ;
Paydary, Pooya .
ECOLOGICAL ENGINEERING, 2020, 146
[2]   Compost leachate treatment by a pilot-scale subsurface horizontal flow constructed wetland [J].
Bakhshoodeh, Reza ;
Alavi, Nadali ;
Majlesi, Monireh ;
Paydary, Pooya .
ECOLOGICAL ENGINEERING, 2017, 105 :7-14
[3]   Remediation of algal cells, PO43-, and NO3- from eutrophic wastewater using Echinodorus cordifolius in zigzag-horizontal subsurface constructed wetlands [J].
Boonbangkeng, Danuphon ;
Treesubsuntorn, Chairat ;
Dolphen, Rujira ;
Thiravetyan, Paitip .
JOURNAL OF ENVIRONMENTAL MANAGEMENT, 2021, 300 (300)
[4]   Long term performance of a constructed wetland for landfill leachate treatment [J].
Bulc, Tjasa G. .
ECOLOGICAL ENGINEERING, 2006, 26 (04) :365-374
[5]   A novel sediment microbial fuel cell with a biocathode in the rice rhizosphere [J].
Chen, Zheng ;
Huang, Yan-chao ;
Liang, Jian-hong ;
Zhao, Feng ;
Zhu, Yong-guan .
BIORESOURCE TECHNOLOGY, 2012, 108 :55-59
[6]   Role of macrophyte Typha latifolia in a constructed wetland for wastewater treatment and assessment of its potential as a biomass fuel [J].
Ciria, MP ;
Solano, ML ;
Soriano, P .
BIOSYSTEMS ENGINEERING, 2005, 92 (04) :535-544
[7]   Floating treatment wetlands integrated with microbial fuel cell for the treatment of urban wastewaters and bioenergy generation [J].
Colares, Gustavo Stolzenberg ;
Dell'Osbel, Naira ;
Barbosa, Carolina, V ;
Lutterbeck, Carlos ;
Oliveira, Gislayne A. ;
Rodrigues, Lucia R. ;
Bergmann, Carlos P. ;
Lopez, Diosnel Rodriguez ;
Rodriguez, Adriane Lawisch ;
Vymazal, Jan ;
Machado, Enio L. .
SCIENCE OF THE TOTAL ENVIRONMENT, 2021, 766
[8]   Improving domestic wastewater treatment efficiency with constructed wetland microbial fuel cells: Influence of anode material and external resistance [J].
Corbella, Clara ;
Puigagut, Jaume .
SCIENCE OF THE TOTAL ENVIRONMENT, 2018, 631-632 :1406-1414
[9]   A review of a recently emerged technology: Constructed wetland - Microbial fuel cells [J].
Doherty, Liam ;
Zhao, Yaqian ;
Zhao, Xiaohong ;
Hu, Yuansheng ;
Hao, Xiaodi ;
Xu, Lei ;
Liu, Ranbin .
WATER RESEARCH, 2015, 85 :38-45
[10]   A state of the art review on microbial fuel cells: A promising technology for wastewater treatment and bioenergy [J].
Du, Zhuwei ;
Li, Haoran ;
Gu, Tingyue .
BIOTECHNOLOGY ADVANCES, 2007, 25 (05) :464-482