Enhancement of hydrolysis and acidification of solid organic waste by a rotational drum fermentation system with methanogenic leachate recirculation

被引:19
作者
Chen, Ling
Jiang, Wei Zhong [1 ]
Kitamura, Yutaka
Li, Baoming
机构
[1] China Agr Univ, Coll Water Conservat & Civil Engn, Beijing 100083, Peoples R China
[2] Univ Tsukuba, Grad Sch Life & Environm Sci, Tsukuba, Ibaraki 3058572, Japan
关键词
leachate from methanogenic process; cascade process; hydrolysis rate constant; volatile solid degradation ratio; VA spectrum;
D O I
10.1016/j.biortech.2006.08.015
中图分类号
S2 [农业工程];
学科分类号
0828 ;
摘要
A cascade process of a rotational drum fermentation system with leachate recirculation from a methanogenic to the acidogenic reactor was constructed to enhance the hydrolysis and acidification of solid organic waste. Using fresh soybean meal as substrates, two process configurations, Cascade process I and 2, without and with leachate recirculation, respectively were employed to perform the experimental estimation under mesophilic condition and a total HRT of 20 days. An apparent first-order hydrolysis rate constant of 9.0 x 10(-3)/d for Cascade process I at pH 4.5-4.6, and 15.8 x 10(-3)/d for Cascade process 2 at pH 4.6-5.2 were obtained. The apparent VS degradation ratios ranged from 16.5% to 21.1% and total VA (as acetic acid) from 14.5 to 16.7 g/L. Occupying ratios for ionized VA decreased from 40.5% to 35.3% for Cascade process I and increased to 68.5% for Cascade process 2. However, occupying ratios of acetic acid decreased from 96.1% to 94.3% for Cascade process 1 and to 72.6% for Cascade process 2, whereas propionic acid and butyric acid ratios increased in acidogenesis of Cascade process 2. The leachate recirculation promoted hydrolysis of substrate in Cascade process 2, where apparent hydrolysis rate constant and VS degradation ratio were higher than that of Cascade process 1. (c) 2006 Elsevier Ltd. All rights reserved.
引用
收藏
页码:2194 / 2200
页数:7
相关论文
共 27 条
[1]   Adsorption of lactic acid from fermentation broth and aqueous solutions on Zeolite molecular sieves [J].
Aljundi, IH ;
Belovich, JM ;
Talu, O .
CHEMICAL ENGINEERING SCIENCE, 2005, 60 (18) :5004-5009
[2]   Design of acidogenic reactors for the anaerobic treatment of the organic fraction of solid food waste [J].
Argelier, S ;
Delgenes, JP ;
Moletta, R .
BIOPROCESS ENGINEERING, 1998, 18 (04) :309-315
[3]   Hydrolysis constant and VFA inhibition in acidogenic phase of MSW anaerobic degradation [J].
Borzacconi, L ;
Lopez, I ;
Anido, C .
WATER SCIENCE AND TECHNOLOGY, 1997, 36 (6-7) :479-484
[4]   AN EVALUATION OF SINGLE-PHASE AND SEPARATED-PHASE ANAEROBIC INDUSTRIAL WASTEWATER-TREATMENT IN FLUIDIZED-BED REACTORS [J].
BULL, MA ;
STERRITT, RM ;
LESTER, JN .
BIOTECHNOLOGY AND BIOENGINEERING, 1984, 26 (09) :1054-1065
[5]  
CHANG JE, 1982, P JAPAN SOC CIVIL EN, V320, P67
[6]   Degradation of unsorted municipal solid waste by a leach-bed process [J].
Chugh, S ;
Chynoweth, DP ;
Clarke, W ;
Pullammanappallil, P ;
Rudolph, V .
BIORESOURCE TECHNOLOGY, 1999, 69 (02) :103-115
[7]   ANAEROBIC DIGESTION OF GLUCOSE WITH SEPARATED ACID PRODUCTION AND METHANE FORMATION [J].
COHEN, A ;
ZOETEMEYER, RJ ;
VANDEURSEN, A ;
VANANDEL, JG .
WATER RESEARCH, 1979, 13 (07) :571-580
[8]  
EASTMAN PA, 1981, ENVIRON TECHNOL, V12, P355
[9]   ANAEROBIC TREATMENT APPLICATIONS AND FUNDAMENTALS - SUBSTRATE-SPECIFICITY DURING PHASE-SEPARATION [J].
FOX, P ;
POHLAND, FG .
WATER ENVIRONMENT RESEARCH, 1994, 66 (05) :716-724
[10]  
GARCIA JB, 1991, CHEM ENG SCI, V46, P2927