Bench-scale batch bioleaching of spent petroleum catalyst using mesophilic iron and sulfur oxidizing acidophiles

被引:0
作者
Haragobinda Srichandan
Dong-Jin Kim
Chandra Sekhar Gahan
Sradhanjali Singh
Seoung-Won Lee
机构
[1] Korea Institute of Geoscience and Mineral Resources (KIGAM),Mineral Resource Research Division
[2] Chungnam National University,Nano Engineering Division, School of Engineering
[3] SRM University,SRM Research Institute
来源
Korean Journal of Chemical Engineering | 2013年 / 30卷
关键词
Bioleaching; Microorganisms; Spent Catalyst; Population Dynamics; Redox Potential;
D O I
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中图分类号
学科分类号
摘要
Microbial leaching of a petroleum spent catalyst was carried out using mixed mesophilic iron and sulfur oxidizing acidophiles. Bench-scale batch stirred tank reactors with a working volume of 1 L were used in this study at 35 °C. The pulp density considered for the study was 10% (w/v), while the particle size of the spent catalyst was varied by 45–106, 106–212 and >212 μm. The leaching percentage of Ni from the spent catalyst was found to be highest (97–98%) with varying particle size. However, the leaching yield for rest of the metals like Al, Fe, V and Mo was 70–74%, 66–85%, 33–43% and 22–45%, respectively. Influence of particle size was predominant on the recovery of all metals except Ni. Assessment of the generation of the bioleach residue after bioleaching showed a weight loss of 54–62% due to the dissolution of the metal values from the spent catalyst. The mineralogical study conducted by X-ray diffraction and scanning electron microscopy supports the dissolution of metals from the spent catalyst. Jarosite mineral phase was the dominant mineral phase in the bioleach residue due to the dissolution of the oxidic and sulfidic mineral phases present in the feed spent catalyst.
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页码:1076 / 1082
页数:6
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共 132 条
[11]  
Barik S P(2004)undefined Euro. J. Min. Proc. Environ. Protect. 4 102-undefined
[12]  
Park K H(2012)undefined Korean J. Chem. Eng. 29 781-undefined
[13]  
Parhi P K(2012)undefined Res. J. Recent Sci. 1 85-undefined
[14]  
Park J T(2012)undefined Hydrometallurgy 125–126 157-undefined
[15]  
Szymczycha-Madeja A(2009)undefined Hydrometallurgy 95 190-undefined
[16]  
Abdel-Aal E A(2010)undefined Miner. Eng. 23 731-undefined
[17]  
Rashad MM(2008)undefined Waste Manage. 28 333-undefined
[18]  
Ognyanova A(2009)undefined Bioresour. Technol. 100 6163-undefined
[19]  
Ozturk A T(1993)undefined J. Biotechnol. 27 91-undefined
[20]  
Michelis I D(1996)undefined Environ. Sci. Technol. 30 3066-undefined