A Comprehensive Review of Characterization Methods for Metallurgical Coke Structures

被引:23
作者
Zheng, Heng [1 ,2 ]
Xu, Runsheng [1 ]
Zhang, Jianliang [1 ]
Daghagheleh, Oday [2 ]
Schenk, Johannes [2 ]
Li, Chuanhui [1 ]
Wang, Wei [3 ]
机构
[1] Univ Sci & Technol Beijing, State Key Lab Adv Met, Beijing 100083, Peoples R China
[2] Univ Leoben, Chair Ferrous Met, Franz Josef Str 18, A-8700 Leoben, Austria
[3] Wuhan Univ Sci & Technol, State Key Lab Refractories & Met, Wuhan 430081, Peoples R China
关键词
coke quality; coke structures; characterization; molecular model; BLAST-FURNACE; QUANTITATIVE-EVALUATION; MOLECULAR-STRUCTURE; NATURAL-GAS; MICRO-CT; STRENGTH; COAL; CARBON; REACTIVITY; BEHAVIOR;
D O I
10.3390/ma15010174
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The structure of coke affects its reactivity and strength, which directly influences its performance in the blast furnace. This review divides coke structures into chemical structure, physical structure, and optical texture according to their relevant characteristics. The focuses of this review are the current characterization methods and research status of the coke structures. The chemical structures (element composition and functional group) can be characterized by elemental analysis, Fourier transform infrared spectroscopy (FTIR), Raman spectroscopy (Raman), X-ray photoelectron spectroscopy (XPS), and nuclear magnetic resonance imaging technology (13C NMR). The physical structures (pore structure and micro-crystallite structure) can be characterized by image method, X-ray CT imaging technique, mercury intrusion method, nitrogen gas adsorption method, X-ray diffraction method (XRD), and high-resolution transmission electron microscopy (HRTEM). The optical textures are usually divided and counted by a polarizing microscope. In the end, this review provides an idea of the construction of a coke molecular structural model, based on the above characterization. With the coke model, the evolution principles of the coke can be calculated and simulated. Hence, the coke performance can be predicted and optimized.
引用
收藏
页数:24
相关论文
共 102 条
[1]  
Bhattacharyya A, 2015, METALURGIJA, V54, P503
[2]  
Bhattacharyya A., 2016, P 25 ANN INT C MET M
[3]   Experimental Simulation and Analysis of Agricultural Waste Injection as an Alternative Fuel for Blast Furnace [J].
Campos de Assis, Carlos Frederico ;
Soares Tenorio, Jorge Alberto ;
Assis, Paulo Santos ;
Nath, Niloy K. .
ENERGY & FUELS, 2014, 28 (11) :7268-7273
[4]   Evaluation of demineralized lignin and lignin-phenolic resin blends to produce biocoke suitable for blast furnace operation [J].
Castro-Diaz, Miguel ;
Fernanda Vega, Maria ;
Diaz-Faes, Elvira ;
Barriocanal, Carmen ;
Musa, Umaru ;
Snape, Colin .
FUEL, 2019, 258
[5]   Bamboo pyrolysis using TG-FTIR and a lab-scale reactor: Analysis of pyrolysis behavior, product properties, and carbon and energy yields [J].
Chen, Dengyu ;
Liu, Dong ;
Zhang, Hongru ;
Chen, Yong ;
Li, Qian .
FUEL, 2015, 148 :79-86
[6]   Review of hydrogen-rich ironmaking technology in blast furnace [J].
Chen, Yanbiao ;
Zuo, Haibin .
IRONMAKING & STEELMAKING, 2021, 48 (06) :749-768
[7]   COKE MICROTEXTURAL DESCRIPTION - COMPARISON OF NOMENCLATURE, CLASSIFICATION AND METHODS [J].
COIN, CDA .
FUEL, 1987, 66 (05) :702-705
[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]   The effect of alkali on the reaction kinetics and strength of blast furnace coke [J].
Dastidar, Maharshi Ghosh ;
Bhattacharyya, Anrin ;
Sarkar, Bitan Kumar ;
Dey, Rajib ;
Mitra, Manoj Kumar ;
Schenk, Johannes .
FUEL, 2020, 268
[10]   Coal for metallurgical coke production:: predictions of coke quality and future requirements for cokemaking [J].
Díez, MA ;
Alvarez, R ;
Barriocanal, C .
INTERNATIONAL JOURNAL OF COAL GEOLOGY, 2002, 50 (1-4) :389-412