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2026 Mathebula Hybrid Al SiC Al2O3 Composites

Possible Mpfuneko Mathebula, Pallab Sarmah

2026enmetal matrix compositespowder metallurgysilicon carbidewearmicrohardness

Abstract

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Aluminum matrix composites (AMCs) have emerged as advanced engineering materials due to their superior mechanical and tribological performance compared to conventional aluminum alloys. In this study, hybrid AMCs reinforced with silicon carbide (SiC) and aluminum oxide (Al2O3) are fabricated through the powder metallurgy (PM) route. Taguchi L16 orthogonal array was employed to design experiments to investigate the effects of reinforcement weight% (wt%), milling speed, and sintering temperature. Microstructural investigations using SEM and XRD confirmed uniform dispersion of reinforcements under optimized conditions, the absence of impurities, and the formation of new phases within the aluminum matrix. ANOVA identified SiC % as the most influential parameter. A multi-response optimization based on Technique for Order Preference by Similarity to Ideal Solution (TOPSIS) obtained superior metallurgical properties with highest hardness (72 HV) and the lowest wear rate (3.6 × 10−3 mm3/N·m) at 12 wt% SiC, 7 wt% Al2O3, 170 rpm milling speed, and 600 °C sintering temperature. This study demonstrates the potential of PM methods for producing hybrid AMCs with enhanced mechanical and tribological properties, highlighting their suitability for engineering applications such as in automobiles where strength, hardness, and wear resistance are critical.

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Cite This Work

@article{41280951-ed51-4635-aa59-9b9eb1ac8eb6,
  title={2026 Mathebula Hybrid Al SiC Al2O3 Composites},
  author={Possible Mpfuneko Mathebula and Pallab Sarmah},
  year={2026},
  language={en}
}
TY  - JOUR
TI  - 2026 Mathebula Hybrid Al SiC Al2O3 Composites
AU  - Possible Mpfuneko Mathebula
AU  - Pallab Sarmah
PY  - 2026
LA  - en
ER  -

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