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Thermodynamic calculation and microstructure characterization of spinel formation in MgO–Al2O3–C refractories
Affiliation:1. School of Material Science and Engineering, Zhengzhou University, Henan, 450001, China;2. Sinosteel Luoyang Institute of Refractories Research Co., Ltd, Henan, 471039, China;3. Henan Vocational College of Information and Statistics, Zhengzhou, 450008, China
Abstract:In this paper, by simulating the gas phase conditions inside the MgO–Al2O3–C refractories during continuous casting process and combining with thermodynamic analysis, as well as SEM analysis, the gas-gas and gas-solid formation of MA spinel were clarified in carbon containing refractories. Thermodynamic calculations showed that gas partial pressure of CO, O2 and Mg could meet the formation and stable existence conditions of MA spinel in MgO–Al2O3–C refractories under service environment, and nitrogen could not affect the formation of MA spinel at 1550 °C in the thermodynamic condition. The formation processes of MA spinel were analyzed experimentally under embedding carbon atmosphere. The carbon-coated alumina powders in MgO–Al2O3–C refractories prevented the direct contact between magnesia and alumina. Mg gas was formed by carbon thermal reaction, then reacted with alumina (gas-solid) and gas containing aluminum (gas-gas) to generate MA spinel. Through gas-gas or gas-solid reaction, the formation of MA spinel was effectively controlled. By means of SEM analysis, a two-layer structure with dense outer spinel layer and loose inner layer was formed in MgO–Al2O3–C refractories.
Keywords:Continuous casting  Thermodynamic calculation  In-situ formation of MA spinel
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