Attapulgite enhances methane production from anaerobic digestion of pig slurry by changing enzyme activities and microbial community

被引:44
作者
Liang, Yue-gan [1 ]
Xu, Lu [1 ,2 ]
Bao, Jing [1 ]
Firmin, Kotchikpa Adekunle [1 ]
Zong, Wenming [2 ]
机构
[1] Anhui Agr Univ, Sch Resource & Environm, Hefei 230036, Anhui, Peoples R China
[2] Anhui Agr Univ, Sch Engn, Hefei 230036, Anhui, Peoples R China
关键词
Anaerobic digestion; High ammonia nitrogen; Attapulgite; Enzyme activity; Trace element; Microbial community; WASTE-ACTIVATED-SLUDGE; ZEOLITE ADDITION; NATURAL ZEOLITE; FERMENTATION; BIOGAS; NANOPARTICLES; PURIFICATION; PRETREATMENT; DYNAMICS; CHLORIDE;
D O I
10.1016/j.renene.2019.06.037
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
This study evaluated the effect of attapulgite addition on the anaerobic digestion of pig slurry. Results showed that attapulgite addition increased methane yield by 8.9%-37.3% and affected methane production kinetics. Attapulgite with the addition loading of 10 g/L obtained the highest methane yield of 210.4 mL/g volatile solids. Attapulgite accelerated the rates of hydrolysis, acetogenesis, and methanogenesis, as evidenced by the increases in the activities of beta-glucosidase, protease, dehydrogenase, and coenzyme F-420; the abundance of hydrolytic and acetogenic bacteria (Clostridiales, Syntrophobacterales, and Fibrobacterales); and the abundance of methanogenic microorganisms (Methanomicrobiales). These phenomena can be ascribed to both the reduced ammonia nitrogen due to attapulgite adsorption and the increased trace elements, such as Ca2+, Mg2+, K+, and Fe3+ ions, due to attapulgite release. However, excessive dose of attapulgite (>= 30 g/L) decreased the promotion of methane production by reducing the enzyme activities of hydrolytic and methanogenic steps and lowering the abundance of hydrolytic, acetogenic, and methanogenic microorganisms due to the high levels of free ammonia and metal ions, such as Mg2+, at the initial phase of digestion. These results provided insights into the improvement of methane production during the anaerobic digestion of animal slurry. (C) 2019 Elsevier Ltd. All rights reserved.
引用
收藏
页码:222 / 232
页数:11
相关论文
共 43 条
[1]   Comparison of nanoparticles effects on biogas and methane production from anaerobic digestion of cattle dung slurry [J].
Abdelsalam, E. ;
Samer, M. ;
Attia, Y. A. ;
Abdel-Hadi, M. A. ;
Hassan, H. E. ;
Badr, Y. .
RENEWABLE ENERGY, 2016, 87 :592-598
[2]   Anaerobic co-digestion of dairy manure, meat and bone meal, and crude glycerol under mesophilic conditions: Synergistic effect and kinetic studies [J].
Andriamanohiarisoamanana, Fetra J. ;
Saikawa, Aya ;
Tarukawa, Kumiko ;
Qi, Guangdou ;
Pan, Zhifei ;
Yamashiro, Takaki ;
Iwasaki, Masahiro ;
Ihara, Ikko ;
Nishida, Takehiro ;
Umetsu, Kazutaka .
ENERGY FOR SUSTAINABLE DEVELOPMENT, 2017, 40 :11-18
[3]  
[Anonymous], 1995, Standard methods for the examination of water and wastewater, V19th
[4]  
Belmonte Marisol, 2011, Electron. J. Biotechnol., V14, P2
[5]   Anaerobic digestion and electromethanogenic microbial electrolysis cell integrated system: Increased stability and recovery of ammonia and methane [J].
Cerrillo, Miriam ;
Vinas, Marc ;
Bonmati, August .
RENEWABLE ENERGY, 2018, 120 :178-189
[6]  
[谌书 CHEN Shu], 2008, [矿物学报, Acta Mineralogica Sinica], V28, P77
[7]   Effect of ciprofloxacin on methane production and anaerobic microbial community [J].
Do Thi Mai ;
Stuckey, David C. ;
Oh, Seungdae .
BIORESOURCE TECHNOLOGY, 2018, 261 :240-248
[8]   Real evidence about zeolite as microorganisms immobilizer in anaerobic fluidized bed reactors [J].
Fernandez, N. ;
Montalvo, S. ;
Fernandez-Polanco, F. ;
Guerrero, L. ;
Cortes, I. ;
Borja, R. ;
Sanchez, E. ;
Travieso, L. .
PROCESS BIOCHEMISTRY, 2007, 42 (04) :721-728
[9]   Removal of phosphate from aqueous solution by thermally treated natural palygorskite [J].
Gan, Fangqun ;
Zhou, Jianmin ;
Wang, Huoyan ;
Du, Changwen ;
Chen, Xiaoqin .
WATER RESEARCH, 2009, 43 (11) :2907-2915
[10]   Lipase and protease extraction from activated sludge [J].
Gessesse, A ;
Dueholm, T ;
Petersen, SB ;
Nielsen, PH .
WATER RESEARCH, 2003, 37 (15) :3652-3657