Wetting and corrosion behavior between magnesia–carbon refractory and converter slags with different MgO contents

被引:0
|
作者
Rui-qiang Bai
Si-yang Liu
Fei-xiong Mao
Yuan-yuan Zhang
Xin Yang
Zhi-jun He
机构
[1] University of Science and Technology Liaoning,School of Materials and Metallurgy
[2] Chinese Academy of Sciences,Ningbo Key Laboratory of Marine Protection Materials, Ningbo Institute of Materials Technology and Engineering
关键词
Converter slag; MgO–C refractory; MgO content; Wetting; Corrosion;
D O I
暂无
中图分类号
学科分类号
摘要
The influence of MgO content in slag on wetting and corrosion behavior between slag and MgO–C refractory was investigated. It can be known from the high-temperature wetting experiment that as the MgO content in the slag increases, the final contact angle between the slag and the MgO–C refractory gradually increases and the penetration depth of the slag into the refractory gradually decreases from 60.54 μm (when the MgO content is 8%) to 28.11 μm (when the MgO content is 12%). The CaO and SiO2 in the slag penetrate into the MgO–C refractory along the pores or surface cracks formed by carbon oxidation and react with MgO to generate a large amount of low-melting compound CaO–MgO–SiO2, which accelerates the corrosion of the refractory. As the MgO content in slag increases, the viscosity of the slag increases and the fluidity becomes worse, so that the mass transfer and diffusion of molecules or ions in the slag are weakened. In addition, the increase in MgO reduces the activity of FeO in the slag, which inhibits the interfacial chemical reaction, thereby weakening the wetting effect caused by the reaction.
引用
收藏
页码:1073 / 1079
页数:6
相关论文
共 50 条
  • [41] Basic slag corrosion of alumina-magnesia-carbon refractory bricks containing Al and Si antioxidants
    Andres Calvo, Walter
    Lujan Dignani, Maria
    German Galliano, Pablo
    Brandaleze, Elena
    Tomba Martinez, Analia G.
    INTERNATIONAL JOURNAL OF APPLIED CERAMIC TECHNOLOGY, 2022, 19 (04) : 2331 - 2343
  • [42] Oxidation Resistance and Wetting Behavior of MgO-C Refractories: Effect of Carbon Content
    Liu, Zhaoyang
    Yu, Jingkun
    Yang, Xin
    Jin, Endong
    Yuan, Lei
    MATERIALS, 2018, 11 (06):
  • [43] Effect of carbon content of ferromanganese alloy on corrosion behaviour of MgO-C refractory
    Um, H.
    Lee, K.
    Kim, K. -Y.
    Shin, G.
    Chung, Y.
    IRONMAKING & STEELMAKING, 2014, 41 (01) : 31 - 37
  • [44] Physicochemical transformation of gasification slags with different residue carbon contents during sintering/melting process
    Xuan, Weiwei
    Gao, Jian
    Yan, Shiying
    Liu, Zhen
    Sun, Kaidi
    Peng, Baozai
    An, Haiquan
    FUEL, 2024, 368
  • [45] Effects of La2Ce2O7 on the phase composition, microstructure, wetting behaviour and corrosion resistance of magnesia refractory
    Ji, Peng
    Liu, Zhenli
    Zhang, Guanchen
    Peng, Zijun
    Yu, Jingkun
    Yuan, Lei
    JOURNAL OF ALLOYS AND COMPOUNDS, 2025, 1010
  • [46] \Effect of Mn0 on High-Alumina Slag Viscosity and Corrosion Behavior of Refractory in Slags
    Xu, Renze
    Zhang, Jianliang
    Fan, Xiaoyue
    Zheng, Weiwei
    Zhao, Yongan
    ISIJ INTERNATIONAL, 2017, 57 (11) : 1887 - 1894
  • [47] Research Progress on High-Temperature Wetting Behavior Between Slag and Refractory
    Li Y.
    Liu X.
    Li H.
    Cai W.
    Lv J.
    Duan H.
    Zhang H.
    Kuei Suan Jen Hsueh Pao/Journal of the Chinese Ceramic Society, 2023, 51 (03): : 677 - 686
  • [48] Wetting behavior and mechanism between hot metal and carbon brick
    Deng, Yong
    Liu, Ran
    Jiao, Kexin
    Chen, Yanbo
    JOURNAL OF THE EUROPEAN CERAMIC SOCIETY, 2021, 41 (11) : 5740 - 5749
  • [49] Corrosion Behavior of Alumina Containing Refractory in Blast Furnace Hearth by CaO-SiO2-MgO-Al2O3-Cr2O3 Slags
    Xu, Renze
    Zhang, Jianliang
    Li, Zushu
    Zhao, Yongan
    ISIJ INTERNATIONAL, 2019, 59 (11) : 1933 - 1939
  • [50] Corrosion Mechanisms of Different Refractory Aggregates in Contact with SiO2-MgO-Based Slag
    Wu M.
    Huang A.
    Bai C.
    Gu H.
    Li G.
    InterCeram: International Ceramic Review, 2020, 69 (01): : 22 - 29