Reactor network modelling for biomass-fueled chemical-looping gasification and combustion processes

被引:4
作者
Toffolo, Kayden [1 ]
Meunier, Sarah [1 ]
Ricardez-Sandoval, Luis [1 ]
机构
[1] Univ Waterloo, Dept Chem Engn, Waterloo, ON N2L 3G1, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
Chemical; -looping; Biomass; Carbon capture; Reactor network modelling; IRON-OXIDE; REACTION-KINETICS; CARBON-DIOXIDE; OXYGEN; BED; SIMULATION; HEMATITE; CAPTURE; COAL;
D O I
10.1016/j.fuel.2024.131254
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
A reactor network was developed to predict the performance of biomass-fueled chemical-looping gasification (CLG) and chemical-looping combustion (CLC) in packed beds. The reactor network consists of a combination of continuous stirred-tank reactors, plug flow reactors, and packed bed reactor zones. The model was developed and validated using experimental data under both CLG and CLC conditions, as well as a sensitivity analysis. Using the validated model, a variety of oxygen carrier (OC) bed lengths and locations were assessed to determine the resulting impact on the CLG and CLC performance. For CLG, the highest gasification efficiency (75.1%) occurred with an OC/biomass ratio of 0.25 combined with a steam/biomass ratio of 1, with the OC placed near the reactor inlet. The resulting gasification efficiency was of similar magnitude to that reported in experimental data. For CLC, a fully packed bed with steam as the inlet gas resulted in the highest outlet CO2 fraction, with an outlet stream that consisted of 95% CO2 and H2O. This reactor design improved the outlet CO2 purity by an order of magnitude in comparison with experimental data; thus demonstrating their potential and advancing the commercial adoption of these emerging technologies. The model was also used to predict the dynamic behaviour of the system and to determine the most suitable time to end the reduction stage, while maintaining a high CO2 fraction in the recovered gas. These design strategies can be implemented to facilitate biomass-fueled energy generation by improving the sustainability of the gasification and combustion systems.
引用
收藏
页数:12
相关论文
共 47 条
[11]   Reaction characteristics and lattice oxygen transformation mechanism of semi-coke chemical looping gasification with Fe2O3/CaSO4-Al2O3 oxygen carrier [J].
Guan, Yu ;
Liu, Yinhe ;
Wang, Bo ;
Feng, Yiwei ;
Lyu, Qiang .
JOURNAL OF CLEANER PRODUCTION, 2022, 369
[12]  
Hairer E., 1996, Solving Ordinary Differential Equations II: Stiff and Differential-Algebraic Problems, P118, DOI DOI 10.1007/978-3-642-05221-7_8
[13]   Dynamic optimization of fixed bed chemical-looping combustion processes [J].
Han, Lu ;
Bollas, George M. .
ENERGY, 2016, 112 :1107-1119
[14]   Study on Kinetics of Iron Oxide Reduction by Hydrogen [J].
Hou Baolin ;
Zhang Haiying ;
Li Hongzhong ;
Zhu Qingshan .
CHINESE JOURNAL OF CHEMICAL ENGINEERING, 2012, 20 (01) :10-17
[15]   Synthesis gas production through biomass direct chemical looping conversion with natural hematite as an oxygen carrier [J].
Huang, Zhen ;
He, Fang ;
Feng, Yipeng ;
Zhao, Kun ;
Zheng, Anqing ;
Chang, Sheng ;
Li, Haibin .
BIORESOURCE TECHNOLOGY, 2013, 140 :138-145
[16]   EVALUATION OF A CHEMICAL-LOOPING-COMBUSTION POWER-GENERATION SYSTEM BY GRAPHIC EXERGY ANALYSIS [J].
ISHIDA, M ;
ZHENG, D ;
AKEHATA, T .
ENERGY, 1987, 12 (02) :147-154
[17]   A novel chemical-looping combustor without NOx formation [J].
Ishida, M ;
Jin, HG .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 1996, 35 (07) :2469-2472
[18]   Reactivity study on natural-gas-fueled chemical-looping combustion by a fixed-bed reactor [J].
Jin, HG ;
Ishida, M .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2002, 41 (16) :4004-4007
[19]   GLOBAL REACTION SCHEMES FOR HYDROCARBON COMBUSTION [J].
JONES, WP ;
LINDSTEDT, RP .
COMBUSTION AND FLAME, 1988, 73 (03) :233-249
[20]   Biomass and carbon dioxide capture and storage: A review [J].
Kemper, Jasmin .
INTERNATIONAL JOURNAL OF GREENHOUSE GAS CONTROL, 2015, 40 :401-430