Anaerobic hydrogen production with an efficient carrier-induced granular sludge bed bioreactor

被引:178
作者
Lee, KS
Wu, JF
Lo, YS
Lo, YC
Lin, PJ
Chang, JS [1 ]
机构
[1] Natl Cheng Kung Univ, Dept Chem Engn, Tainan 701, Taiwan
[2] Feng Chia Univ, Dept Chem Engn, Taichung 407, Taiwan
关键词
biohydrogen; granular sludge; activated carbon; bioreactor design;
D O I
10.1002/bit.20174
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
A novel bioreactor containing self-flocculated anaerobic granular sludge was developed for high-performance hydrogen production from sucrose-based synthetic wastewater. The reactor achieved an optimal volumetric hydrogen production rate of similar to7.3 L/h/L (7,150 mmol/d/L) and a maximal hydrogen yield of 3.03 mol H-2/mol sucrose when it was operated at a hydraulic retention time (HRT) of 0.5 h with an influent sucrose concentration of 20 g COD/L. The gas-phase hydrogen content and substrate conversion also exceeded 40 and 90%, respectively, under optimal conditions. Packing of a small quantity of carrier matrices on the bottom of the upflow reactor significantly stimulated sludge granulation that can be accomplished within 100 h. Among the four carriers examined, spherical activated carbon was the most effective inducer for granular sludge formation. The carrier-induced granular sludge bed (CIGSB) bioreactor was started up with a low HRT of 4 - 8 h (corresponding to an organic loading rate of 2.5 - 5 g COD/h/L) and enabled stable operations at an extremely low HRT (up to 0.5 h) without washout of biomass. The granular sludge was rapidly formed in CIGSIB supported with activated carbon and reached a maximal concentration of 26 g/L at HRT = 0.5 h. The ability to maintain high biomass concentration at low HRT (i.e., high organic loading rate) highlights the key factor for the remarkable hydrogen production efficiency of the CIGSB processes. (C) 2004 Wiley Periodicals, Inc.
引用
收藏
页码:648 / 657
页数:10
相关论文
共 44 条
[1]  
[Anonymous], 1995, Standard methods for examination of water and waste water, V19th
[2]   Photobiological hydrogen production [J].
Asada, Y ;
Miyake, J .
JOURNAL OF BIOSCIENCE AND BIOENGINEERING, 1999, 88 (01) :1-6
[3]  
Bailey JE., 1986, BIOCH ENG FUNDAMENTA, P421
[4]   Biohydrogen production using an up-flow anaerobic sludge blanket reactor [J].
Chang, FY ;
Lin, CY .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2004, 29 (01) :33-39
[5]   Biohydrogen production with fixed-bed bioreactors [J].
Chang, JS ;
Lee, KS ;
Lin, PJ .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2002, 27 (11-12) :1167-1174
[6]   Acid-base enrichment enhances anaerobic hydrogen production process [J].
Chen, CC ;
Lin, CY ;
Lin, MC .
APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2002, 58 (02) :224-228
[7]  
Chen CC, 2001, APPL MICROBIOL BIOT, V57, P56
[8]  
COHEN A, 1984, PROCESS BIOCHEM, V19, P228
[9]   Hydrogen production by biological processes: a survey of literature [J].
Das, D ;
Veziroglu, TN .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2001, 26 (01) :13-28
[10]   Influence of synthetic and natural polymers on the anaerobic granulation process [J].
El-Mamouni, R ;
Leduc, R ;
Guiot, SR .
WATER SCIENCE AND TECHNOLOGY, 1998, 38 (8-9) :341-347