Biocatalytic sulfur removal from fuels: Applicability for producing low sulfur gasoline

被引:90
作者
McFarland, BL
Boron, DJ
Deever, W
Meyer, JA
Johnson, AR
Atlas, RM
机构
[1] MicroBioTech Consulting, Davis, CA 95616 USA
[2] US DOE, Washington, DC 20585 USA
[3] JA Meyer Associates, Martinez, CA 94553 USA
[4] Univ Louisville, Dept Biol, Louisville, KY 40292 USA
关键词
biocatalyst; desulfurization; fuel; gasoline; sulfur;
D O I
10.1080/10408419891294208
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Environmental regulations are driving R&D efforts to produce low sulfur fuels, including diesel fuel and gasoline for motor vehicles. Biocatalytic sulfur removal from fuels has potential applicability for producing low sulfur gasoline. Microbial biocatalysts have been identified that can biotransform sulfur compounds found in fuels, including ones that selectively remove sulfur from dibenzothiophene heterocyclic compounds. Most attention is given to the 4S pathway of Rhodococcus, which can remove sulfur from substituted and unsubstituted dibenzothiophenes, including sulfur compounds that hinder chemical catalysis and that resist removal by mild hydrotreatment. Various bioreactor and bioprocess designs are being tested for use with biocatalysts, including recombinant biocatalysts, for use in removing sulfur from fuels and feedstocks within the petroleum refinery stream. With bioprocess improvements that enhance biocatalyst stability, achieve faster kinetics, improve mass transfer limitations, temperature and solvent tolerance, as well as broaden substrate specificity to attack a greater range of heterocyclic compounds, biocatalysis may be a cost-effective approach to achieve the production of low sulfur gasoline. The challenge will be to accomplish these improvements by the time the regulations for low sulfur gasoline and other vehicle fuels go into effect in order to be competitive with emerging nonbiological desulfurization technologies.
引用
收藏
页码:99 / 147
页数:49
相关论文
共 131 条
[11]   Organic solvent tolerance and antibiotic resistance increased by overexpression of marA in Escherichia coli [J].
Asako, H ;
Nakajima, H ;
Kobayashi, K ;
Kobayashi, M ;
Aono, R .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 1997, 63 (04) :1428-1433
[12]   Ring cleavage of sulfur heterocycles: how does it happen? [J].
Bressler, DC ;
Norman, JA ;
Fedorak, PM .
BIODEGRADATION, 1997, 8 (05) :297-311
[13]  
CAMPBELL IM, 1993, PREPRO AM CHEM SOC D, V38, P175
[14]   Degradation and desulfurization of dibenzothiophene sulfone and other sulfur compounds by Agrobacterium MC501 and a mixed culture [J].
Constanti, M ;
Giralt, J ;
Bordons, A .
ENZYME AND MICROBIAL TECHNOLOGY, 1996, 19 (03) :214-219
[15]   DESULFURIZATION OF DIBENZOTHIOPHENE BY BACTERIA [J].
CONSTANTI, M ;
GIRALT, J ;
BORDONS, A .
WORLD JOURNAL OF MICROBIOLOGY & BIOTECHNOLOGY, 1994, 10 (05) :510-516
[16]  
COONEY CL, 1992, GAS OIL ENV BIOTECHN, V4
[17]   MICROBIAL METABOLISM OF THIOPHEN-2-CARBOXYLATE [J].
CRIPPS, RE .
BIOCHEMICAL JOURNAL, 1973, 134 (02) :353-366
[18]  
DATTA R, 1997, US DEP EN BIOD COORD
[19]   Conservation of plasmid-encoded dibenzothiophene desulfurization genes in several rhodococci [J].
DenisLarose, C ;
Labbe, D ;
Bergeron, H ;
Jones, AM ;
Greer, CW ;
AlHawari, J ;
Grossman, MJ ;
Sankey, BM ;
Lau, PCK .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 1997, 63 (07) :2915-2919
[20]   CHARACTERIZATION OF THE DESULFURIZATION GENES FROM RHODOCOCCUS SP STRAIN IGTS8 [J].
DENOME, SA ;
OLDFIELD, C ;
NASH, LJ ;
YOUNG, KD .
JOURNAL OF BACTERIOLOGY, 1994, 176 (21) :6707-6716