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Microstructural development and mechanical performance of mullite-alumina and hibonite-alumina ceramics with controlled addition of a glass phase

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Abstract Robust mechanical properties of refractory ceramics are critical to their performance in industrial applications. To investigate the effects of glass on the sinterability and mechanical properties of refractory ceramics,… Click to show full abstract

Abstract Robust mechanical properties of refractory ceramics are critical to their performance in industrial applications. To investigate the effects of glass on the sinterability and mechanical properties of refractory ceramics, a controlled amount of glassy phase (10 wt%) was added to mullite (Al 6 Si 2 O 13 )-alumina (Al 2 O 3 ) and hibonite (CaAl 12 O 19 )-alumina composites. Two liquid compositions within the Al 2 O 3 -SiO 2 -CaO system were chosen to produce a glass at 1600 °C that exists in equilibrium with a mullite-alumina composite and a hibonite-alumina composite. We performed a comparative study of the mechanical properties (hardness, flexural strength, and creep resistance) of mullite-alumina and hibonite-alumina composites with and without glassy phases. The observed microstructures clearly affected the mechanical properties. The strong interface created between the three phases in each subsystem and the reduced amount of residual porosity in the composites with an added glassy phase may explain the increase in strength, hardness, and creep resistance of the composites. However, better mechanical properties and finer grain sizes of mullite make the mullite-alumina (-glass) system a better candidate for refractory applications that require improved mechanical properties.

Keywords: phase; alumina hibonite; alumina; mullite alumina; hibonite alumina; mechanical properties

Journal Title: Ceramics International
Year Published: 2018

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