Kinetic modelling of methane production during bio-electrolysis from anaerobic co-digestion of sewage sludge and food waste

被引:19
作者
Prajapati, Kalp Bhusan [1 ]
Singh, Rajesh [1 ]
机构
[1] Cent Univ Gujarat, Sch Environm & Sustainable Dev, Gandhinagar 382030, Gujarat, India
关键词
Anaerobic co-digestion; Bio-electrolysis; Kinetic models; Akaike's Information Criterion; ACTIVATED-SLUDGE; WATER TREATMENT; AMMONIA INHIBITION; ELECTRICAL-CURRENT; ORGANIC FRACTION; SOLID-WASTES; UASB REACTOR; BIOMASS; METHANOGENESIS; PRETREATMENT;
D O I
10.1016/j.biortech.2018.05.036
中图分类号
S2 [农业工程];
学科分类号
0828 ;
摘要
In present study batch tests were performed to investigate the enhancement in methane production under bioelectrolysis anaerobic co-digestion of sewage sludge and food waste. The bio-electrolysis reactor system (B-EL) yield more methane 148.5 ml/g COD in comparison to reactor system without bio-electrolysis (B-CONT) 125.1 ml/g COD. Whereas bio-electrolysis reactor system (C-EL) Iron Scraps amended yield lesser methane (51.2 ml/g COD) in comparison to control bio-electrolysis reactor system without Iron scraps (C-CONT - 114.4 ml/g COD). Richard and Exponential model were best fitted for cumulative methane production and biogas production rates respectively as revealed modelling study. The best model fit for the different reactors was compared by Akaike's Information Criterion (AIC) and Bayesian Information Criterion (BIC). The bioelectrolysis process seems to be an emerging technology with lesser the loss in cellulase specific activity with increasing temperature from 50 to 80 degrees C.
引用
收藏
页码:491 / 498
页数:8
相关论文
共 32 条
[1]  
[Anonymous], 2012, ANALES HIDROLOG A M
[2]   Anaerobic digestion of seven different sewage sludges: A biodegradability and modelling study [J].
Astals, S. ;
Esteban-Gutierrez, M. ;
Fernandez-Arevalo, T. ;
Aymerich, E. ;
Garcia-Heras, J. L. ;
Mata-Ahiarez, J. .
WATER RESEARCH, 2013, 47 (16) :6033-6043
[3]   Enhanced digestion of waste activated sludge using microbial electrolysis cells at ambient temperature [J].
Asztalos, Joseph R. ;
Kim, Younggy .
WATER RESEARCH, 2015, 87 :503-512
[4]  
Bain R. L., 1992, ADV SOLAR ENERGY ANN, P49
[5]  
Botheju D., 2011, The Open Waste Management Journal, V4, P1, DOI 10.2174/1876400201104010001
[6]   Direct Biological Conversion of Electrical Current into Methane by Electromethanogenesis [J].
Cheng, Shaoan ;
Xing, Defeng ;
Call, Douglas F. ;
Logan, Bruce E. .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2009, 43 (10) :3953-3958
[7]   Combining biocatalyzed electrolysis with anaerobic digestion [J].
Clauwaert, P. ;
Toledo, R. ;
Van der Ha, D. ;
Crab, R. ;
Verstraete, W. ;
Hu, H. ;
Udert, K. M. ;
Rabaey, K. .
WATER SCIENCE AND TECHNOLOGY, 2008, 57 (04) :575-579
[8]   Simultaneous enhancement of methane production and methane content in biogas from waste activated sludge and perennial ryegrass anaerobic co-digestion: The effects of pH and C/N ratio [J].
Dai, Xiaohu ;
Li, Xiaoshuai ;
Zhang, Dong ;
Chen, Yinguang ;
Dai, Lingling .
BIORESOURCE TECHNOLOGY, 2016, 216 :323-330
[9]   Landfill gas generation after mechanical biological treatment of municipal solid waste. Estimation of gas generation rate constants [J].
De Gioannis, G. ;
Muntoni, A. ;
Cappai, G. ;
Milia, S. .
WASTE MANAGEMENT, 2009, 29 (03) :1026-1034
[10]   Biomass retention on electrodes rather than electrical current enhances stability in anaerobic digestion [J].
De Vrieze, Jo ;
Gildemyn, Sylvia ;
Arends, Jan B. A. ;
Vanwonterghem, Inka ;
Verbeken, Kim ;
Boon, Nico ;
Verstraete, Willy ;
Tyson, Gene W. ;
Hennebel, Tom ;
Rabaey, Korneel .
WATER RESEARCH, 2014, 54 :211-221