Abstract
Liquid phase bonded (LPB) porous SiC with neck bonding phases consisting of yttrium aluminate (Y4Al2O9, Y3Al5O12), yttrium silicate (Y2Si2O7), and Al2O3 were fabricated using varying amounts of an Al2O3Y2O3SiO2 bonding additive in Ar at 1500 °C for 1 h. LPB porous SiC ceramics exhibited unimodal pore-size distributions, porosities of 36.644.8%, and pore sizes of 7.78.5 μm. The particle-size distribution of SiC powders was an important factor in determining the pore characteristics, including pore-size distribution, pore shape, porosity, and pore size, and the flexural strength as well as the gas permeability of LPB porous SiC ceramics. The porosity and pore size increased, and the pore-size distribution narrowed by using SiC powders with a narrow size distribution. The flexural strength of porous SiC varied in the range of 39.766.7MPa and was mainly dependent on the porosity, pore shape, pore size, and solid boning area varied by the SiC particle-size distribution. A relatively high permeability (1.281.84 × 10-12m2) of LPB porous SiC was attained mainly due to the unimodal pore size distribution of pores with sizes of 7.78.5 μm.
Original language | English |
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Pages (from-to) | 660-668 |
Number of pages | 9 |
Journal | Journal of the Ceramic Society of Japan |
Volume | 129 |
Issue number | 11 |
DOIs | |
Publication status | Published - 2021 Nov 1 |
Bibliographical note
Funding Information:Acknowledgments This study was supported by a grant from the Fundamental R&D Program of the Ministry of Trade, Industry, and Energy, Republic of Korea and Korea Institute of Science and Technology, Republic of Korea.
Publisher Copyright:
© 2021 The Ceramic Society of Japan.
Keywords
- Flexural strength
- Particle size distribution
- Permeability
- Porous SiC
- Reaction bonding
ASJC Scopus subject areas
- Ceramics and Composites
- General Chemistry
- Condensed Matter Physics
- Materials Chemistry