High-temperature biotrickling filtration of hydrogen sulphide

被引:0
作者
Indrani Datta
Roberta R. Fulthorpe
Shobha Sharma
D. Grant Allen
机构
[1] University of Toronto,Department of Chemical Engineering and Applied Chemistry
[2] University of Toronto at Scarborough,Department of Physical and Environmental Sciences
来源
Applied Microbiology and Biotechnology | 2007年 / 74卷
关键词
Reduced sulphur; Air pollution; Biofiltration; Sulphur oxidisers; Biotreatment; Biological gas cleaning;
D O I
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学科分类号
摘要
Biofiltration of malodorous reduced sulphur compounds such as hydrogen sulphide has been confined to emissions that are at temperatures below 40°C despite the fact that there are many industrial emissions (e.g. in the pulp and paper industry) at temperatures well above 40°C. This paper describes our study on the successful treatment of hydrogen sulphide gas at temperatures of 40, 50, 60 and 70°C using a microbial community obtained from a hot spring. Three biotrickling filter (BTF) systems were set up in parallel for a continuous run of 9 months to operate at three different temperatures, one of which was always at 40°C as a mesophilic control and the other two were for exploring high-temperature operation up to 70°C. The continuous experiment and a series of batch experiments in glass bottles (250 ml) showed that addition of glucose and monosodium glutamate enhanced thermophilic biofiltration of hydrogen sulphide gas and a removal rate of 40 g m−3 h−1 was achieved at 70°C. We suggest that the glucose is acting as a carbon source for the existing microbial community in the BTFs, whereas glutamate is acting as a compatible solute. The use of such organic compounds to enhance biodegradation of hydrogen sulphide, particularly at high temperatures, has not been demonstrated to our knowledge and, hence, has opened up a range of possibilities for applying biofiltration to hot gas effluent.
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页码:708 / 716
页数:8
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[11]  
Parsons SA(2001). nov., three novel species isolated from deteriorated mural paintings, transfer of the species of the genus Environ Sci Technol 35 4347-4352
[12]  
Stuetz RM(2006) to Bioresour Technol 97 982-988
[13]  
Cox CD(1998), as Biodegradation 8 329-338
[14]  
Woo HJ(2002) comb. nov. and J Bacteriol 184 3492-3500
[15]  
Robinson KG(2001) comb.nov., and emended description of the genus FEMS Microbiol Lett 205 291-297
[16]  
Dhamwichukorn S(1999)Application of phylogenetic networks in evolutinary studies J Air Waste Manag Assoc 49 350-354
[17]  
Kleinheinz GT(2000)Treatment of volatile organic compounds in a biotrickling filter under thermophilic conditions Water Sci Technol 42 49-60
[18]  
Bagley ST(1993)Biodegradation of p-nitrophenol by P. putida Appl Environ Microbiol 59 695-700
[19]  
Evans WC(2000)Enhancement of Biodegradation of phenol and a nongrowth substrate 4-chlorophenol by medium augmentation with conventional carbon sources J Biosci Bioeng 89 318-322
[20]  
Smith BSW(2006)Genetic and biochemical characterization of a 2,4,6-trichlorophenol degradation pathway in Ralstonia eutropha JMP134 Int J Syst Evol Microbiol 56 805-810