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Research Article | Open Access

Effect of sintering temperatures on the physical, structural properties and microstructure of mullite-based ceramics

Mohamed Lokman Jalaluddin1Umar Al-Amani Azlan1( )Mohd Warikh Abd Rashid1Norfauzi Tamin2
Faculty of Technology and Industrial and Manufacturing Engineering, Universiti Teknikal Malaysia Melaka, Malaysia
Faculty of Technical and Vocational Education, Universiti Tun Hussien Onn Malaysia, Parit Raja, Johor, Malaysia
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Abstract

This study explored the impact of sintering temperature variations on the synthesis and characteristics of mullite ceramics derived from a composite blend of kaolinite clay, silica (silicon dioxide), and feldspar. Sintering temperatures ranging from 1100 to 1200 ℃ were systematically examined to analyze alterations in shrinkage, density, microstructure, elemental composition, and phase formation. The study revealed that an increase in sintering temperature led to decreased shrinkage due to improved particle packing and reduced porosity. Ceramic density showed a direct relation with sintering temperature, reaching the optimal density at 1175 ℃ and indicating efficient particle packing and compaction. Analysis through field emission scanning electron microscopy (FESEM) provided insights into microstructural changes, including alterations in grain morphology, porosity, and connectivity. Energy dispersive X-ray spectroscopy (EDS) clarified element distribution within the microstructure, offering valuable information on compositional variations. X-ray diffraction (XRD) examinations unveiled temperature-dependent phase transformations, which confirmed the successful formation of mullite during the sintering process. A sintering temperature of 1175 ℃ yielded the optimal ceramic quality and cost-effectiveness for high-temperature heating processes.

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AIMS Materials Science
Pages 243-255

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Cite this article:
Jalaluddin ML, Azlan UA-A, Rashid MWA, et al. Effect of sintering temperatures on the physical, structural properties and microstructure of mullite-based ceramics. AIMS Materials Science, 2024, 11(2): 243-255. https://doi.org/10.3934/matersci.2024014

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Received: 09 January 2024
Revised: 10 February 2024
Accepted: 21 February 2024
Published: 28 February 2024
©2024 the Author(s), licensee AIMS Press.

This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0)