期刊
CONSTRUCTION AND BUILDING MATERIALS
卷 289, 期 -, 页码 -出版社
ELSEVIER SCI LTD
DOI: 10.1016/j.conbuildmat.2021.123032
关键词
MgO-C refractories; Morphological evolution; MgSiN2; Thermal shock resistance; Corrosion resistance
资金
- National Natural Science Foundation of China [51502215, 51574187, 51602232]
- Natural Science Foundation of Hubei Province [2018CFA022]
By introducing catalysts and ferric nitrate, a novel MgO-C refractory with excellent thermal shock resistance and corrosion resistance was successfully prepared, which was achieved by accelerating the formation of ceramic bonding phases and optimizing the microstructure.
To improve the thermal shock resistance of MgO-C refractories, a novel MgO-C refractory, based on high-emperature nitriding, was prepared by introducing Si powder/phenolic resin loaded with catalyst into MgO-C refractories to form silicon-containing ceramic bonding phases in situ. The effects of catalyst content and nitriding temperature on the phase evolution, microstructure, mechanical properties, and corrosion resistance of refractories were investigated. The addition of catalyst accelerated the in-situ formation of more ceramic bonding phases as compared to the catalyst-free refractory, especially the influence on the morphology and quantity of MgSiN2, which determined the properties of MgO-C refractories. Here, the formation mechanism and morphological evolution of MgSiN2 in refractories were explored. In addition, the addition of 1 wt% ferric nitrate greatly optimized the microstructure of MgO-C refractories, and the sample showed excellent mechanical properties, thermal shock resistance, and corrosion resistance after nitriding at 1400 degrees C. (C) 2021 Elsevier Ltd. All rights reserved.
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