Dynamic one-dimensional model for biological methanation in a stirred tank reactor

被引:19
作者
Inkeri, Eero [1 ]
Tynjala, Tero [1 ]
Laari, Arto [1 ]
Hyppanen, Timo [1 ]
机构
[1] Lappeenranta Univ Technol, Skinnarilankatu 34,PL 20, Lappeenranta 53851, Finland
关键词
Biological methanation; Gas-liquid mass transfer; Power-to-gas; Dynamic model; Stirred tank reactor; POWER-TO-GAS; LIFE-CYCLE ASSESSMENT; BIOCATALYTIC METHANATION; CARBON-DIOXIDE; HYDROGEN; CO2; BIOMETHANE;
D O I
10.1016/j.apenergy.2017.10.073
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Power-to-gas technology can facilitate the transition toward a renewables-based energy system by converting excess electricity to hydrogen and then into methane via methanation. Unlike traditional chemical methanation, biological methanation uses an aqueous solution of biomass (archaea), which consumes H-2 and CO2 to produce CH4. The process is limited primarily by the gas liquid mass transfer step. In addition to experimental research, modeling is often used to guide and expedite the development and scale-up of bioreactors from the laboratory to the pilot and commercial scales. Modeling has been used to optimize and test various operation conditions outside the range of experimentation. Estimations of gas-liquid mass transfer and the related stirring power are important for optimization and feasibility studies in the application of biological methanation to power-to-gas systems. Related published literature, however, is limited. In this study, a dynamic model for a continuously stirred biomethanation reactor was developed with novel approach that combines semi-fundamental modeling of gas liquid mass transfer, hydrodynamics, and biological reactions. The model was validated against existing experimental data and used in a sensitivity analysis of critical parameters, a scale-up study of a biomethanation reactor, and process dynamics studies. In each of the varying operational conditions, the model reproduced the trends observed in the experimental studies. The sensitivity analysis showed that biological parameters have a minimal effect on methane production. Conversely, the model is very sensitive to the gas-liquid mass transfer properties, such as the geometry of the impeller and reactor. The scaled-up study of biomethanation reactors with a CH4 production capacity of 56-508 Nm(3)/h revealed that the required stirring power is 0.7-1.1% from the electrolyzer power and decreases as the size of the reactor increases. High output quality ( similar to 98%) of the methane could be reached in each of the studied cases, and the overall efficiency of the power-to-methane process was roughly 50%. Dynamic simulations showed that the modeled process is tolerant to large gradients in the input parameters. After correctly setting the reactor- and process-specific parameters, the model can be used to perform scaled-up and dynamic studies of various reactor designs and different biomass solutions.
引用
收藏
页码:95 / 107
页数:13
相关论文
共 32 条
[1]   Biocatalytic methanation of hydrogen and carbon dioxide in a fixed bed bioreactor [J].
Alitalo, Anni ;
Niskanen, Marko ;
Aura, Erkki .
BIORESOURCE TECHNOLOGY, 2015, 196 :600-605
[2]  
[Anonymous], 2016, ELECTROCHAEA GMBH
[3]   Biological methanation of hydrogen within biogas plants: A model-based feasibility study [J].
Bensmann, A. ;
Hanke-Rauschenbach, R. ;
Heyer, R. ;
Kohrs, F. ;
Benndorf, D. ;
Reichl, U. ;
Sundmacher, K. .
APPLIED ENERGY, 2014, 134 :413-425
[4]   Biocatalytic methanation of hydrogen and carbon dioxide in an anaerobic three-phase system [J].
Burkhardt, M. ;
Koschack, T. ;
Busch, G. .
BIORESOURCE TECHNOLOGY, 2015, 178 :330-333
[5]   Techno-economic and Life Cycle Assessment of methane production via biogas upgrading and power to gas technology [J].
Collet, Pierre ;
Flottes, Eglantine ;
Favre, Alain ;
Raynal, Ludovic ;
Pierre, Helene ;
Capela, Sandra ;
Peregrina, Carlos .
APPLIED ENERGY, 2017, 192 :282-295
[6]   A feasibility study on the bioconversion of CO2 and H2 to biomethane by gas sparging through polymeric membranes [J].
Diaz, I. ;
Perez, C. ;
Alfaro, N. ;
Fdz-Polanco, F. .
BIORESOURCE TECHNOLOGY, 2015, 185 :246-253
[7]   Theoretical prediction of gas-liquid mass transfer coefficient, specific area and hold-up in sparged stirred tanks [J].
Garcia-Ochoa, F ;
Gomez, E .
CHEMICAL ENGINEERING SCIENCE, 2004, 59 (12) :2489-2501
[8]   Bioreactor scale-up and oxygen transfer rate in microbial processes: An overview [J].
Garcia-Ochoa, Felix ;
Gomez, Emilio .
BIOTECHNOLOGY ADVANCES, 2009, 27 (02) :153-176
[9]   Renewable Power-to-Gas: A technological and economic review [J].
Goetz, Manuel ;
Lefebvre, Jonathan ;
Moers, Friedemann ;
Koch, Amy McDaniel ;
Graf, Frank ;
Bajohr, Siegfried ;
Reimert, Rainer ;
Kolb, Thomas .
RENEWABLE ENERGY, 2016, 85 :1371-1390
[10]   Multiple-impeller systems with a special emphasis on bioreactors: a critical review [J].
Gogate, PR ;
Beenackers, AACM ;
Pandit, AB .
BIOCHEMICAL ENGINEERING JOURNAL, 2000, 6 (02) :109-144