Model based scale-up study of the calcium looping process

被引:31
作者
Ylatalo, Jaakko [1 ]
Ritvanen, Jouni [1 ]
Tynjala, Tero [1 ]
Hyppanen, Timo [1 ]
机构
[1] Lappeenranta Univ Technol, LUT Energy, Lappeenranta 53851, Finland
关键词
Calcium looping process; 1-D modeling; CO2; capture; Fluidized bed reactor; Scale-up; FLUIDIZED-BED REACTOR; CO2; CAPTURE; SIMULATION; SYSTEM; CAO;
D O I
10.1016/j.fuel.2013.07.036
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 1-D dynamic calcium looping model was applied to a large scale calcium looping concept capturing CO2 from a 250 MWt power plant. Several new features were added to the existing model frame in order to successfully simulate the large scale unit. Models were needed for new material fractions, such as ash and CaSO4, sulfur capture and heat transfer in the solid return system. The plant was dimensioned based on the experience from large CFB units and the heat transfer design was evaluated based on initial simulations of the design case. The unit was then simulated in five load scenarios ranging from full load to zero load, no flue gas flow to the carbonator. The scale-up of the process is feasible from the model's point of view keeping in mind the assumptions and simplifications made in the modeling. The results from the simulations confirmed that successful operation of a large scale calcium looping unit requires good heat transfer design including cooling of the hot solids coming the calciner. Also the recirculation of flue gas in both reactors is necessary to ensure the sufficient fluidization for different flue gas flows from the source combustor. Solid circulation control is also critical because it affects heavily the thermal balance of the system as well as the capture efficiency and the CO2 balance. Results show that utilizing the experience gained from the large CFB-units coupled with new innovations, the scale-up of this process could be feasible in the near future. The ability to operate flexibly in different modes could give this technology an advantage needed for wide industrial utilization of the process. (C) 2013 Elsevier Ltd. All rights reserved.
引用
收藏
页码:329 / 337
页数:9
相关论文
共 26 条
[1]   Fluidized bed combustion systems integrating CO2 capture with CaO [J].
Abanades, JC ;
Anthony, EJ ;
Wang, JS ;
Oakey, JE .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2005, 39 (08) :2861-2866
[2]   Carbon dioxide capture from combustion flue gases with a calcium oxide chemical loop. Experimental results and process development [J].
Alonso, M. ;
Rodriguez, N. ;
Gonzalez, B. ;
Grasa, G. ;
Murillo, R. ;
Abanades, J. C. .
INTERNATIONAL JOURNAL OF GREENHOUSE GAS CONTROL, 2010, 4 (02) :167-173
[3]   The calcium looping cycle for CO2 capture from power generation, cement manufacture and hydrogen production [J].
Dean, C. C. ;
Blamey, J. ;
Florin, N. H. ;
Al-Jeboori, M. J. ;
Fennell, P. S. .
CHEMICAL ENGINEERING RESEARCH & DESIGN, 2011, 89 (6A) :836-855
[4]  
DeSouzaSantos ML, 2010, MECH ENG-CRC, P1
[5]   Modeling the solids circulation rates and solids inventories of an interconnected circulating fluidized bed reactor system for CO2 capture by calcium looping [J].
Diego, M. E. ;
Arias, B. ;
Abanades, J. C. .
CHEMICAL ENGINEERING JOURNAL, 2012, 198 :228-235
[6]   Experiment and Modeling of CO2 Capture from Flue Gases at High Temperature in a Fluidized Bed Reactor with Ca-Based Sorbents [J].
Fang, Fan ;
Li, Zhen-Shan ;
Cai, Ning-Sheng .
ENERGY & FUELS, 2009, 23 (1-2) :207-216
[7]   Synthetic CaO-based Sorbent for CO2 Capture [J].
Florin, Nicholas ;
Fennell, Paul .
10TH INTERNATIONAL CONFERENCE ON GREENHOUSE GAS CONTROL TECHNOLOGIES, 2011, 4 :830-838
[8]  
Galloy Alexander, 2011, VGB Powertech, V91, P64
[9]   Sorbent attrition in a carbonation/calcination pilot plant for capturing CO2 from flue gases [J].
Gonzalez, Belen ;
Alonso, Monica ;
Carlos Abanades, J. .
FUEL, 2010, 89 (10) :2918-2924
[10]   CO2 Capture with CaO in a 200 kWth Dual Fluidized Bed Pilot Plant [J].
Hawthorne, C. ;
Dieter, H. ;
Bidwe, A. ;
Schuster, A. ;
Scheffknecht, G. ;
Unterberger, S. ;
Kaess, M. .
10TH INTERNATIONAL CONFERENCE ON GREENHOUSE GAS CONTROL TECHNOLOGIES, 2011, 4 :441-448