Anaerobic Fermentation of Slaughterhouse Waste-Codigestion with Wheat Straw to Determine Methane Biochemical Potential and Kinetic Analysis

被引:2
作者
Quelal, Orlando Meneses [1 ]
Hurtado, David Pilamunga [1 ]
机构
[1] Univ Politecn Estatal Carchi Posgrad, Postgrad Dept, Tulcan 040102, Ecuador
来源
FERMENTATION-BASEL | 2023年 / 9卷 / 08期
关键词
anaerobic co-digestion; biochemical methane potential; slaughterhouse waste; kinetic model; biogas; methane; CO-DIGESTION; BIOGAS PRODUCTION; FOOD WASTE; BATCH; BMP; MANURE; PREDICTION; RESIDUES; FUTURE;
D O I
10.3390/fermentation9080726
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
Slaughterhouse solid waste is one of the sources of greenhouse gas (GHG) today. Crop residue decomposition or incineration has a great impact on global warming. Therefore, it is urgent to study the possibility of better environmentally friendly approaches to solid waste management and its safe disposal. The digestion of this type of solid waste in a decomposing process from organic content allows the recovery of valuable resources (such as biogas) and the use of the digestate in various fertilizer industries. In this study, two substrates were studied to determine their biomethane (BMP) potential in anaerobic digestion. The substrates were fermented and digested anaerobically and biogas production was measured. Methane yield of the slaughterhouse substrates had a lower methane yield between 232.2 and 250.8 mL/gVS and 53.6 to 57.9% biodegradability. Harvest substrates produce between 167.1 and 274.9 mL/gVS with a biodegradability of 39.1 to 64.3%. Co-digestion of both substrates at a ratio of IS 1:2 (RR:WS 3:1) generated a higher yield 289.1 ml/gVS and 66.9%. biodegradability of A kinetic analysis was carried out using Gompertz models, transfer and logistic function for methane production biodegradation.
引用
收藏
页数:12
相关论文
共 35 条
[11]   Viability of Biogas Production and Determination of Bacterial Kinetics in Anaerobic Co-digestion of Cabbage Waste and Livestock Manure [J].
Gaibor-Chavez, Juan ;
Nino-Ruiz, Zulay ;
Velazquez-Marti, Borja ;
Lucio-Quintana, Araceli .
WASTE AND BIOMASS VALORIZATION, 2019, 10 (08) :2129-2137
[12]   Anaerobic co-digestion process for biogas production: Progress, challenges and perspectives [J].
Hagos, Kiros ;
Zong, Jianpeng ;
Li, Dongxue ;
Liu, Chang ;
Lu, Xiaohua .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2017, 76 :1485-1496
[13]   Pilot scale application of anaerobic baffled reactor for biologically enhanced primary treatment of raw municipal wastewater [J].
Hahn, Martha J. ;
Figueroa, Linda A. .
WATER RESEARCH, 2015, 87 :494-502
[14]   Towards a standardization of biomethane potential tests [J].
Holliger, Christof ;
Alves, Madalena ;
Andrade, Diana ;
Angelidaki, Irini ;
Astals, Sergi ;
Baier, Urs ;
Bougrier, Claire ;
Buffiere, Pierre ;
Carballa, Marta ;
de Wilde, Vinnie ;
Ebertseder, Florian ;
Fernandez, Belen ;
Ficara, Elena ;
Fotidis, Ioannis ;
Frigon, Jean-Claude ;
de Laclos, Helene Fruteau ;
Ghasimi, Dara S. M. ;
Hack, Gabrielle ;
Hartel, Mathias ;
Heerenklage, Joern ;
Horvath, Ilona Sarvari ;
Jenicek, Pavel ;
Koch, Konrad ;
Krautwald, Judith ;
Lizasoain, Javier ;
Liu, Jing ;
Mosberger, Lona ;
Nistor, Mihaela ;
Oechsner, Hans ;
Oliveira, Joao Vitor ;
Paterson, Mark ;
Pauss, Andre ;
Pommier, Sebastien ;
Porqueddu, Isabella ;
Raposo, Francisco ;
Ribeiro, Thierry ;
Pfund, Florian Rusch ;
Stromberg, Sten ;
Torrijos, Michel ;
van Eekert, Miriam ;
van Lier, Jules ;
Wedwitschka, Harald ;
Wierinck, Isabella .
WATER SCIENCE AND TECHNOLOGY, 2016, 74 (11) :2515-2522
[15]   The future of anaerobic digestion and biogas utilization [J].
Holm-Nielsen, J. B. ;
Al Seadi, T. ;
Oleskowicz-Popiel, P. .
BIORESOURCE TECHNOLOGY, 2009, 100 (22) :5478-5484
[16]   Comparison on batch anaerobic digestion of five different livestock manures and prediction of biochemical methane potential (BMP) using different statistical models [J].
Kafle, Gopi Krishna ;
Chen, Lide .
WASTE MANAGEMENT, 2016, 48 :492-502
[17]   Homo-Acetogens: Their Metabolism and Competitive Relationship with Hydrogenotrophic Methanogens [J].
Karekar, Supriya ;
Stefanini, Renan ;
Ahring, Birgitte .
MICROORGANISMS, 2022, 10 (02)
[18]   Methane production through anaerobic digestion: Participation and digestion characteristics of cellulose, hemicellulose and lignin [J].
Li, Wanwu ;
Khalid, Habiba ;
Zhu, Zhe ;
Zhang, Ruihong ;
Liu, Guangqing ;
Chen, Chang ;
Thorin, Eva .
APPLIED ENERGY, 2018, 226 :1219-1228
[19]   Methane production through anaerobic co-digestion of sheep dung and waste paper [J].
Li, Wanwu ;
Siddhu, Muhammad Abdul Hanan ;
Amin, Farrukh Raza ;
He, Yanfeng ;
Zhang, Ruihong ;
Liu, Guangqing ;
Chen, Chang .
ENERGY CONVERSION AND MANAGEMENT, 2018, 156 :279-287
[20]   Interactions between Anaerobic Fungi and Methanogens in the Rumen and Their Biotechnological Potential in Biogas Production from Lignocellulosic Materials [J].
Li, Yuqi ;
Meng, Zhenxiang ;
Xu, Yao ;
Shi, Qicheng ;
Ma, Yuping ;
Aung, Min ;
Cheng, Yanfen ;
Zhu, Weiyun .
MICROORGANISMS, 2021, 9 (01) :1-17