Metallic Iron Effects on Coke Analog Carbon Bonding and Reactivity

被引:11
作者
Aladejebi, Oluwatosin A. [1 ]
Monaghan, Brian J. [1 ]
Reid, Mark H. [2 ]
Panhuis, Marc In Het [3 ,4 ]
Longbottom, Raymond J. [1 ]
机构
[1] Univ Wollongong, Sch Mech Mat & Mechatron, PYROmet Res Grp, Wollongong, NSW 2522, Australia
[2] Australian Nucl Sci & Technol Org, Australian Ctr Neutron Scattering, Sydney, NSW 2234, Australia
[3] Univ Wollongong, Soft Mat Grp, Sch Chem, ARC Ctr Excellence Electromat Sci,AIIM Facil, Wollongong, NSW 2522, Australia
[4] Univ Wollongong, ARC Ctr Excellence Electromat Sci, AIIM Facil, Intelligent Polymer Res Inst, Wollongong, NSW 2522, Australia
基金
澳大利亚研究理事会;
关键词
carbon bonding; coke analog; metallurgical coke; Raman; reactivity; BLAST-FURNACE; MINERAL MATTER; RAMAN-SPECTROSCOPY; CO2; GASIFICATION; KINETICS; GRAPHITIZATION; DISSOLUTION; MICROPROBE; CHARCOAL; DIOXIDE;
D O I
10.1002/srin.201700039
中图分类号
TF [冶金工业];
学科分类号
0806 ;
摘要
In this study, characterization of the porosity, carbon bonding, and reactivity of coke analog materials prepared with and without metallic iron has been carried out. The porosity of the analog is well controlled, reproducible, and typical of a metallurgical coke. Using Raman spectroscopy, the coke analog carbon bonding is a combination of sp(2) and sp(3)-sp(2) bonding types and the values overlapped with those reported for metallurgical coke. It has been widely reported that metallic iron increases graphitization (increases sp(2) bonding) of metallurgical coke. This has been replicated in the coke analog and shown to principally occur at the metallic iron-coke analog interface and not throughout the bulk of the coke analog. The reaction of coke analog containing metallic iron with CO2 has been evaluated using thermogravimetric analysis over the temperature range 1173-1623K. It has been found that the coke analog containing metallic iron displayed similar, but faster reaction behavior to coke analog with no metallic iron.
引用
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页数:10
相关论文
共 56 条
[1]  
Aderibigbe D.A., 1981, Ironmaking and steelmaking, V1, P11
[2]  
Aladejebi O. A., 2014, 6 HIGH TEMP PROC S S
[3]  
ASTM International, 2014, D5341D5341M14 ASTM I
[4]  
ASTM International, 1991, D5187912002 ASTM INT
[5]  
Atkins P., 2008, Atkins Physical Chemistry
[6]  
Biswas A.K., 1981, PRINCIPLES BLAST FUR
[7]   Observations of the mineral matter material present at the Coke/Iron interface during coke dissolution into iron [J].
Chapman, Michael W. ;
Monaghan, Brian J. ;
Nightingale, Sharon A. ;
Mathieson, John G. ;
Nightingale, Robert J. .
ISIJ INTERNATIONAL, 2007, 47 (07) :973-981
[8]   RAMAN MICROPROBE STUDIES ON CARBON MATERIALS [J].
CUESTA, A ;
DHAMELINCOURT, P ;
LAUREYNS, J ;
MARTINEZALONSO, A ;
TASCON, JMD .
CARBON, 1994, 32 (08) :1523-1532
[9]   Characterization of tuyere-level core-drill coke samples from blast furnace operation [J].
Dong, S. ;
Paterson, N. ;
Kazarian, S. G. ;
Dugwell, D. R. ;
Kandiyoti, R. .
ENERGY & FUELS, 2007, 21 (06) :3446-3454
[10]   Study on the Effect of Heat Treatment and Gasification on the Carbon Structure of Coal Chars and Metallurgical Cokes using Fourier Transform Raman Spectroscopy [J].
Dong, S. ;
Alvarez, P. ;
Paterson, N. ;
Dugwell, D. R. ;
Kandiyoti, R. .
ENERGY & FUELS, 2009, 23 (3-4) :1651-1661