Responses of an anaerobic fixed-film reactor to hydraulic shock loadings

被引:40
作者
Chua, H
Hu, WF
Yu, PHF
Cheung, MWL
机构
[1] S CHINA AGR UNIV,DEPT FOOD SCI,GUANGZHOU,PEOPLES R CHINA
[2] HONG KONG POLYTECH UNIV,DEPT APPL BIOL & CHEM TECHNOL,KOWLOON,HONG KONG
关键词
anaerobic fixed-film reactor; hydraulic shock loading; process failure; recovery; stability;
D O I
10.1016/S0960-8524(97)84702-5
中图分类号
S2 [农业工程];
学科分类号
0828 ;
摘要
The responses of an anaerobic fixed-film reactor (AFFR) to hydraulic shock loadings were studied. The AFFR was started up with a synthetic wastewater of 3000 mg COD/l at 5.00 d hydraulic retention time (HRT), achieving 98.1% COD removal efficiency. When stable operation was attained, the HRT was sporadically adjusted to 2.50, 1.25, 1.00 and 0.50 d to simulate two, four, five and 10 times hydraulic shock loadings, respectively, while the COD loading was maintained constant. Under two, four and jive times hydraulic shock loadings, the COD removal efficiency was temporarily reduced to between 84.4 and 88.3%, and the pH of the treated effluent and the biogas production were also affected. The AFFR could recover from the temporary inhibition due to these shock loadings and resumed normal operation within eight days. On the other hand, under 10 times hydraulic shock loading, the treatment performance deteriorated drastically. Volatile fatty acids (VFAs) accumulated in the AFFR liquor resulting in reactor souring and failure. When the HRT was returned to 5.00 d, the biofilter could be recovered within a few days. The ability of the AFFR to recover from critical hydraulic shock loadings and system failure was attributed to the immobilized-biofilm design, which enabled the temporarily inhibited biofilms to be retained in the AFFR and regain activity when favourable conditions were restored. (C) 1997 Elsevier Science Ltd.
引用
收藏
页码:79 / 83
页数:5
相关论文
共 20 条
[1]  
APHA, 1992, STAND METH EX WAST W
[2]   TREATMENT OF CLAM PROCESSING WASTEWATERS BY MEANS OF UPFLOW ANAEROBIC SLUDGE BLANKET TECHNOLOGY [J].
BOARDMAN, GD ;
TISINGER, JL ;
GALLAGHER, DL .
WATER RESEARCH, 1995, 29 (06) :1483-1490
[3]  
BORJA R, 1995, BIORESOURCE TECHNOLO, V52, P2157
[4]   ANAEROBIC WASTE-WATER TREATMENT IN THE FOOD-PROCESSING INDUSTRY - 2 CASE-STUDIES [J].
CAMPOS, JR ;
FORESTI, E ;
CAMACHO, RDP .
WATER SCIENCE AND TECHNOLOGY, 1986, 18 (12) :87-97
[5]   BIOCHEMICAL METHANE POTENTIAL AND SOLID-STATE ANAEROBIC-DIGESTION OF KOREAN FOOD WASTES [J].
CHO, JK ;
PARK, SC ;
CHANG, HN .
BIORESOURCE TECHNOLOGY, 1995, 52 (03) :245-253
[6]   Hydrodynamics in the packed bed of the anaerobic fixed film reactor [J].
Chua, H ;
Fung, JPC .
WATER SCIENCE AND TECHNOLOGY, 1996, 33 (08) :1-6
[7]   Operation of a novel anaerobic biofilter for treating food-processing wastewater [J].
Chua, H ;
Cheng, CCN .
APPLIED BIOCHEMISTRY AND BIOTECHNOLOGY, 1996, 57-8 :837-843
[8]   ENERGY GENERATION BY METHANATION OF PERSISTENT WASTES [J].
CHUA, H ;
CHEN, YF ;
YAP, MGS ;
NG, WJ .
APPLIED BIOCHEMISTRY AND BIOTECHNOLOGY, 1995, 51-2 :673-680
[9]   A novel adsorption-anaerobiosis column for the removal of persistent organics from contaminated water [J].
Chua, H ;
Chen, YF .
MARINE POLLUTION BULLETIN, 1995, 31 (4-12) :313-316
[10]   MIXED-FLOW AND PLUG-FLOW PERFORMANCES OF AN ANAEROBIC BIOFILTER TREATING 2-ETHYLHEXANOIC ACID [J].
CHUA, H ;
YAP, MGS ;
NG, WJ .
APPLIED BIOCHEMISTRY AND BIOTECHNOLOGY, 1992, 34-5 :789-800