Coal Refining Chemical Looping Systems with CO2 as a Co-Feedstock for Chemical Syntheses

被引:13
作者
Kathe, Mandar [1 ]
Sandvik, Peter [1 ]
Fryer, Charles [1 ]
Kong, Fanhe [1 ]
Zhang, Yitao [1 ]
Grigonis, Gabrielle [1 ]
Fan, Liang-Shih [1 ]
机构
[1] Ohio State Univ, Dept Chem & Biomol Engn, Columbus, OH 43210 USA
关键词
TRACE-ELEMENT BEHAVIOR; OXYGEN CARRIER; CARBON CAPTURE; THERMODYNAMIC ANALYSIS; CALCIUM FERRITE; GASIFICATION; PERFORMANCE; HYDROGEN; TECHNOLOGY; COMBUSTION;
D O I
10.1021/acs.energyfuels.7b02742
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
This study quantifies the advantages of a chemical looping reducer reactor modularization strategy that leverages two or more reducer reactors operating in parallel to enhance syngas production beyond what is achievable by a single reducer reactor or conventional processes. The modularized system incorporates CO2 capture and utilization as a feedstock in an iron-titanium composite metal oxide based chemical looping system to enhance coal based chemical production. Simulations conducted in ASPEN Plus software suggest that adopting a cocurrent moving bed reducer reactor based modularization strategy can improve syngas yield by greater than 11% over a single chemical looping reducer reactor. Experiments conducted on a bench scale reducer reactor confirm the findings of the simulations. The modularization simulation was scaled up and incorporated into commercial sized methanol and acetic acid production plants. Chemical looping modularization demonstrates the ability to reduce coal consumption by 25% over a baseline coal gasification process, compared to 15% reduction if a single chemical looping reducer reactor is used instead of the modular strategy, for 10 000 ton per day methanol production. Integration into a commercial scale acetic acid plant shows conditions in which the process can operate as a CO2 neutral or negative system, where the process was consuming more CO2 than it produces. These results indicate the potential for significant feedstock reduction in large-scale coal to chemical processes, like methanol, acetic acid, formic acid, and oxalic acid.
引用
收藏
页码:1139 / 1154
页数:16
相关论文
共 62 条
[41]   Generalized Analysis of Gasifier Performance using Equilibrium Modeling [J].
Ravikiran, Anapagaddi ;
Renganathan, Thiruvengadam ;
Pushpavanam, Subramaniam ;
Voolapalli, Ravi Kumar ;
Cho, Young Sang .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2012, 51 (04) :1601-1611
[42]   CO2 utilization for gasification of carbonaceous feedstocks: A thermodynamic analysis [J].
Renganathan, T. ;
Yadav, M. V. ;
Pushpavanam, S. ;
Voolapalli, R. K. ;
Cho, Y. S. .
CHEMICAL ENGINEERING SCIENCE, 2012, 83 :159-170
[43]   Technological learning for carbon capture and sequestration technologies [J].
Riahi, K ;
Rubin, ES ;
Taylor, MR ;
Schrattenholzer, L ;
Hounshell, D .
ENERGY ECONOMICS, 2004, 26 (04) :539-564
[44]   Kinetic analysis of the interactions between calcium ferrite and coal char for chemical looping gasification applications: Identifying reduction routes and modes of oxygen transfer [J].
Riley, Jarrett ;
Siriwardane, Ranjani ;
Tian, Hanjing ;
Benincosa, William ;
Poston, James .
APPLIED ENERGY, 2017, 201 :94-110
[45]   High-Pressure Char Gasification Kinetics: CO Inhibition of the C-CO2 Reaction [J].
Roberts, D. G. ;
Harris, D. J. .
ENERGY & FUELS, 2012, 26 (01) :176-184
[46]   Potential use of liquid metal oxides for chemical looping gasification: A thermodynamic assessment [J].
Sarafraz, M. M. ;
Jafarian, M. ;
Arjomandi, M. ;
Nathan, G. J. .
APPLIED ENERGY, 2017, 195 :702-712
[47]   CO2-gasification of a lignite coal in the presence of an iron-based oxygen carrier for chemical-looping combustion [J].
Saucedo, Marco A. ;
Lim, Jin Yang ;
Dennis, John S. ;
Scott, Stuart A. .
FUEL, 2014, 127 :186-201
[48]  
Shah V., 2014, DOENETL341013114
[49]   Chemical looping coal gasification with calcium ferrite and barium ferrite via solid-solid reactions [J].
Siriwardane, Ranjani ;
Riley, Jarrett ;
Tian, Hanjing ;
Richards, George .
APPLIED ENERGY, 2016, 165 :952-966
[50]   Effect of Coal Ash Composition on Ash Fusion Temperatures [J].
Song, Wen J. ;
Tang, Li H. ;
Zhu, Xue D. ;
Wu, Yong Q. ;
Zhu, Zi B. ;
Koyama, Shuntarou .
ENERGY & FUELS, 2010, 24 (01) :182-189