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Effect of the Organic and Nitrogen Removal and Electricity Production on Changing the External Resistor and the Inflow Loading in the Biocathode Microbial Fuel Cell
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 Title & Authors
Effect of the Organic and Nitrogen Removal and Electricity Production on Changing the External Resistor and the Inflow Loading in the Biocathode Microbial Fuel Cell
Kim, Jiyeon; Kim, Byunggoon; Kim, Hongsuck; Yun, Zuwhan;
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 Abstract
In order to remove the organic substances and the nitrate-nitrogen contained in wastewater, some researchers have studied the simultaneous removal of organics and nitrogen by using different biocathode microbial fuel cells (MFCs). The operating conditions for removing the contaminants in the MFCs are the external resistances, HRTs, the concentration of the influent wastewater, and other factors. This study aimed to determine the effect of the external resistors and organic loading rates, from the changing HRT, on the removal of the organics and nitrogen and on the production of electric power using the Denitrification Biocathode - Microbial Fuel Cell (DNB-MFC). As regards the results of the study, the removal efficiencies of did not show any difference, but the nitrate-nitrogen removal efficiencies were increased by decreasing the external resistance. The maximum denitrification rate achieved was in the external resistance , and the maximum power density was in . When the DNB-MFC was operated with increasing influent organic and nitrate loading by reducing the HRTs, the removal efficiencies were increased linearly, and the maximum nitrate removal rate was at HRT 0.6 h.
 Keywords
Biocathode microbial fuel cell;Denitrification;External resistance;Influent loading rate;Simultaneous organic and nitrate removal;
 Language
Korean
 Cited by
1.
Effect of Electrode Configuration on the Substrate Degradation in Microbial Fuel Cells, Journal of Korean Society of Environmental Engineers, 2017, 39, 8, 489  crossref(new windwow)
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