globalchange  > 气候变化与战略
DOI: 10.1016/j.fuel.2019.116696
论文题名:
Improvement of bioelectricity generation and microalgal productivity with concomitant wastewater treatment in flat-plate microbial carbon capture cell
作者: Varanasi J.L.; Prasad S.; Singh H.; Das D.
刊名: Fuel
ISSN: 162361
出版年: 2020
卷: 263
语种: 英语
英文关键词: Biocathode ; Bioelectricity ; Microalgae ; Microbial carbon capture ; Wastewater treatment
Scopus关键词: Algae ; Bioelectric phenomena ; Carbon capture ; Carbon dioxide ; Cathodes ; Climate change ; Effluents ; Electrophysiology ; Energy policy ; Industrial water treatment ; Microorganisms ; Molecular biology ; Open circuit voltage ; Reclamation ; Wastewater disposal ; Biocathodes ; Chlorella sorokiniana ; COD removal efficiency ; Electricity generation ; Micro-algae ; Microbial carbons ; Physico - chemical parameters ; Waste to energy technologies ; Wastewater treatment
英文摘要: The unprecedented increase in global population has triggered the energy crisis, climate change and waste disposal issues which are necessitated the advancements in waste to energy technologies. The present study is directed towards evaluating the potential of microbial carbon capture cells (MCC) for simultaneous power generation, wastewater treatment and microalgal biomass production. Chlorella sorokiniana was used to establish the biocathode using anodic effluent as feed. The developed MCC was affected by physico-chemical parameters such as inlet pH, light intensity and photoperiod. The inoculum age of 12 h, inoculum size of 20%v/v, inlet pH 7.5, light intensity of 140 µmol m−2 s−1 and photoperiod of 12:12 (Light:dark) were asserted as most suitable conditions for achieving high performance of biocathode. The electricity generation was dependent upon the O2 availability at cathode and a drastic drop in voltage was observed under O2 limited conditions. Supplementation of anodic off-gas alone to cathode was not sufficient to sustain the growth of microalgae. However, combining internal anodic CO2 channelling with external CO2 pumping at cathode enhanced the performance of MCC. The experimental results revealed maximum open circuit voltage of 637 mV with a maximum power density of 2.32 W m−3. The maximum microalgal dry cell mass of 812 mg L−1 was achieved with an overall COD removal efficiency and energy recovery of 92–95% and 59%, respectively. These sustainability studies show that such a strategy can be applied for real time industrial flue gas treatment along with wastewater treatment in the future. © 2019 Elsevier Ltd
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资源类型: 期刊论文
标识符: http://119.78.100.158/handle/2HF3EXSE/159015
Appears in Collections:气候变化与战略

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作者单位: Department of Biotechnology, Indian Institute of Technology Kharagpur, India; Advanced Technology Development Centre, Indian Institute of Technology Kharagpur, India

Recommended Citation:
Varanasi J.L.,Prasad S.,Singh H.,et al. Improvement of bioelectricity generation and microalgal productivity with concomitant wastewater treatment in flat-plate microbial carbon capture cell[J]. Fuel,2020-01-01,263
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