Post-mortem study of alumina-spinel castables of an electric arc furnace roof

被引:1
|
作者
Madias, J.
Caligaris, R.E.
Zamboni, L.
机构
关键词
Alumina - Optical microscopy - Scanning electron microscopy - Energy dispersive spectroscopy - X ray diffraction analysis - Degradation - Corrosion resistance - Spalling - Electric furnaces - Particle size analysis;
D O I
暂无
中图分类号
学科分类号
摘要
With the aim of studying the wear mechanism of alumina-spinel castables, a post-mortem study was carried out on samples taken from a used electric arc furnace roof including optical microscopy (phase distribution), SEM observations (for phases not easily appreciated optically), EDAX analysis, and X-ray diffraction. Microstructural analysis confirmed the reaction of the refractory to external agents, even though there was no direct contact with liquid steel and slag. The presence of calcium oxide as fine particles on the surface of the modified castable is the most important factor regarding the degradation of the material as it causes higher reactivity on the concrete. CaO reacts with alumina and precipitates low-melting CA2and CA6 products near the hot side of the roof. CA2 reacts with silica, thereby forming gehlenite (C2AS). A strict control of the proportion and size distribution of the spinel phase can improve the behaviour of the refractory material in service as the addition of fine particles increases resistance to corrosion and the addition of larger particles increases resistance to thermal spalling.
引用
收藏
页码:348 / 353
相关论文
共 50 条
  • [31] Compositional variables and their effect on steel slag resistance and hot strength of high alumina-spinel castables
    Marra, RA
    Haling, S
    Soora, S
    UNIFIED INTERNATIONAL TECHNICAL CONFERENCE ON REFRACTORIES (UNITECR 97), VOL 1 - 3: 5TH BIENNIAL WORLDWIDE CONGRESS - REFRACTORIES, A WORLDWIDE TECHNOLOGY, 1997, : 675 - 677
  • [32] Revisiting CA6 formation in cement-bonded alumina-spinel refractory castables
    Tomba Martinez, A. G.
    Luz, A. P.
    Braulio, M. A. L.
    Sako, E. Y.
    Pandolfelli, V. C.
    JOURNAL OF THE EUROPEAN CERAMIC SOCIETY, 2017, 37 (15) : 5023 - 5034
  • [33] Post-mortem Study of Magnesia–Chromite Refractory Used in a Submerged Arc Furnace in the Copper-Making Process
    Ismael Pérez
    Ignacio Moreno-Ventas
    Roberto Parra
    Guillermo Ríos
    JOM, 2018, 70 : 2435 - 2442
  • [34] Effect of the content of light-burned alumina-spinel composite on the slag resistance of corundum-spinel refractory castables
    Chen, Qingjie
    Yan, Wen
    Li, Nan
    Lin, Xiaoli
    Han, Bingqiang
    Wei, Yaowu
    JOURNAL OF CERAMIC PROCESSING RESEARCH, 2016, 17 (10): : 1100 - 1105
  • [35] Fracture behavior and thermal shock resistance of alumina-spinel castables-Effect of added fused zirconia-alumina
    Yu, Renhong
    Zhang, Liyuan
    Zhang, Xiaohui
    Liu, Pengcheng
    Qi, Haoyuan
    Wang, Junhao
    Liu, Xinhong
    CERAMICS INTERNATIONAL, 2020, 46 (13) : 20732 - 20741
  • [36] Microstructure and phase evolution of alumina-spinel self-flowing refractory castables containing nano-alumina particles
    Otroj, Sasan
    Daghighi, Arash
    CERAMICS INTERNATIONAL, 2011, 37 (03) : 1003 - 1009
  • [37] Development and Application of Castables for Ladle Nozzle of Electric Arc Furnace
    YANG Ding’ao FAN Liuwu YU Zhiming(Sanmenxia Polytechnic college
    China's Refractories, 2002, (03) : 28 - 30
  • [38] Effects of curing time on the pore structure evolution and fracture behavior of CAC bonded alumina-spinel castables
    Liu, Wenjing
    Liao, Ning
    Nath, Mithun
    Ji, Zixu
    Dai, Yajie
    Pan, Liping
    Li, Yawei
    Jastrzebska, Ilona
    Szczerba, Jacek
    CERAMICS INTERNATIONAL, 2022, 48 (17) : 25000 - 25010
  • [39] Effect of CaO content on the hot strength of alumina-spinel castables in the temperature range of 1000° to 1500 °C
    China Steel Corp, Kaohsiung, Taiwan
    J Am Ceram Soc, 11 (2957-2960):
  • [40] Effect of CaO content on the hot strength of alumina-spinel castables in the temperature range of 1000° to 1500°C
    Chan, CF
    Ko, YC
    JOURNAL OF THE AMERICAN CERAMIC SOCIETY, 1998, 81 (11) : 2957 - 2960