Zhang et al., 2015 - Google Patents
Microstructure and high-temperature mechanical properties of ZrO 2-Al 2 O 3-SiC ceramicsZhang et al., 2015
- Document ID
- 1602051118545369258
- Author
- Zhang X
- Ouyang J
- Wang Y
- Liu Z
- Wang Y
- Publication year
- Publication venue
- Journal of Materials Engineering and Performance
External Links
Snippet
In the present work, ZrO 2-Al 2 O 3 ceramics incorporated with and without β-SiC were prepared by hot pressing. ZrO 2-Al 2 O 3 ceramic powder used in this study is a mixture of 71 vol.% YSZ (3 mol.% Y 2 O 3 partially stabilized zirconia) and 29 vol.% α-Al 2 O 3. β-SiC …
- GEIAQOFPUVMAGM-UHFFFAOYSA-N oxozirconium 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[Zr]=O 0 title abstract description 154
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Neuman et al. | Mechanical behavior of zirconium diboride–silicon carbide ceramics at elevated temperature in air | |
Rejab et al. | The effects of CeO2 addition on the physical, microstructural and mechanical properties of yttria stabilized zirconia toughened alumina (ZTA) | |
Ananthakumar et al. | Microstructural, mechanical and thermal characterisation of sol–gel-derived aluminium titanate–mullite ceramic composites | |
Ni et al. | Highly textured ZrB2-based ultrahigh temperature ceramics via strong magnetic field alignment | |
Zhang et al. | Microstructure and high-temperature mechanical properties of ZrO 2-Al 2 O 3-SiC ceramics | |
She et al. | Densification behavior and mechanical properties of pressureless-sintered silicon carbide ceramics with alumina and yttria additions | |
Tekeli | Fracture toughness (KIC), hardness, sintering and grain growth behaviour of 8YSCZ/Al2O3 composites produced by colloidal processing | |
Sarkar et al. | Influence of ZrO2 on the thermo-mechanical response of nano-ZTA | |
Angle et al. | Parameters influencing thermal shock resistance and ionic conductivity of 8 mol% yttria-stabilized zirconia (8YSZ) with dispersed second phases of alumina or mullite | |
Liu et al. | Microstructure and improved mechanical properties of Al2O3/Ba-β-Al2O3/ZrO2 composites with YSZ addition | |
Teow et al. | Effect of Fe2O3 on the densification behaviour and mechanical properties of zirconia-toughened alumina (ZTA) composites prepared by two-stage sintering | |
Yuan et al. | Comparison of sintering behavior and reinforcing mechanisms between 3Y-TZP/Al2O3 (w) and 12Ce-TZP/Al2O3 (w) composites: Combined effects of lanthanide stabilizer and Al2O3 whisker length | |
Akatsu et al. | Toughening enhanced at elevated temperatures in an alumina/zirconia dual-phase matrix composite reinforced with silicon carbide whiskers | |
Malik et al. | Mechanical properties of silicon carbide—in situ zirconium carbonitride composites | |
Santos et al. | Mechanical properties of hot-pressed ZrO2–NbC ceramic composites | |
Tekeli | The flexural strength, fracture toughness, hardness and densification behaviour of various amount of Al2O3-doped 8YSCZ/Al2O3 composites used as an electrolyte for solid oxide fuel cell | |
Medri et al. | ZrB2‐Based Laminates Produced by Tape Casting | |
Palmero et al. | Elaboration and mechanical characterization of multi-phase alumina-based ultra-fine composites | |
Parcianello et al. | Mullite/zirconia nanocomposites from a preceramic polymer and nanosized fillers | |
Ai et al. | Microstructure and properties of Al2O3-ZrO2 ceramics prepared by microwave sintering | |
Silvestroni et al. | Effect of the Sintering Additive on Microstructure and Mechanical Properties of Hi‐Nicalon TM SiC Fibers in a HfB 2 Matrix | |
Xu et al. | Effect of nano-ZrO 2 on microstructure and thermal shock behaviour of Al 2 O 3/SiC composite ceramics used in solar thermal power | |
Wang et al. | Thermal shock behavior of ZrB 2-SiC ceramics with different quenching media | |
Weng et al. | Fabrication and thermal shock resistance of HfB 2-SiC composite with B 4 C additives | |
Ibrahim et al. | Synthesis and mechanical properties of zirconia–yttria matrices/alumina short fibre composites |