Cultivation of microalgae Chlorella sp. in municipal sewage for biofuel production and utilization of biochar derived from residue for the conversion of hematite iron ore (Fe2O3) to iron (Fe) - Integrated algal biorefinery

被引:43
|
作者
Ashokkumar, Veeramuthu
Chen, Wei-Hsin
Kamyab, Hesam
Kumar, Gopalakrishnan
Al-Muhtaseb, Ala'a H.
Ngamcharussrivichai, Chawalit
机构
[1] Center of Excellence in Catalysis for Bioenergy and Renewable Chemicals (CBRC), Faculty of Science, Chulalongkorn University, Pathumwan, Bangkok
[2] Department of Aeronautics and Astronautics, National Cheng Kung University, Tainan
[3] Engineering Department, Razak Faculty of Technology and Informatics, Universiti Teknologi Malaysia, Jalan Sultan Yahya Petra, Kuala Lumpur
[4] School of Civil and Environmental Engineering, Yonsei University, Seoul
[5] Institute of Chemistry, Bioscience and Environmental Engineering, Faculty of Science and Technology, University of Stavanger, Box 8600 Forus, Stavanger
[6] Department of Petroleum and Chemical Engineering, College of Engineering, Sultan Qaboos University, Muscat
[7] Center of Excellence on Petrochemical and Materials Technology (PETROMAT), Chulalongkorn University, Pathumwan, Bangkok
关键词
Microalgae Chlorella sp; Seaweed Sargassum; municipal sewage; Biodiesel; Metallic iron conversion; OXIDE REDUCTION; HYDROGEN-PRODUCTION; SLOW-PYROLYSIS; TG-FTIR; BIOMASS; BIODIESEL; EXTRACTION; KINETICS; BEHAVIOR; COKE;
D O I
10.1016/j.energy.2019.116128
中图分类号
O414.1 [热力学];
学科分类号
摘要
This study demonstrated the utilization of municipal sewage for high biomass production at large scale and achieved highest biomass yield of 46.3 tons and the lipid yield of 13.7 metric tons per acre in a year. The extracted crude lipid was analyzed for biodiesel production, and the yield attained was 92.5 wt% with respect to initial lipid weight. Furthermore, the lipid extracted residue obtained from two different algal biomass such as Chlorella sp. and Sargassum sp. were explored for biochar production through a slow pyrolysis technique at 400 degrees C. The hematite iron ore reduction with algal biochar was performed non-isothermally at 1100 degrees C under nitrogen atmosphere. The metallic iron synthesis from hematite iron ore involves three major steps, and they were as follows (1) in this step the Fe3O4 was synthesized from Fe2O3 at the temperature of 350-450 degrees C; (2) this step contain the formation of FeO from Fe3O4 at the temperature of 700-850 degrees C; (3) finally the formation of metallic iron (Fe) was observed at higher temperature of 850-1100 degrees C. Herein, we established a novel low-cost microalgae-based biorefinery approach for the production of bioenergy and residue for metallic iron production from municipal waste. (C) 2019 Published by Elsevier Ltd.
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页数:12
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