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May 7, 2026Journal of Composite Materials0 citations

Fabrication, machinability, and mechanical performance of A356/SiC/MWCNT hybrid composites via squeeze casting

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GPGurusamy PathinettampadianHSHari Krishna Raj SelvarajVSVelmurugan Shanmugam

Key Points

  • The research aims to investigate the mechanical performance and machinability of A356 aluminium alloy composites reinforced with silicon carbide and carbon nanotubes.
  • A356 aluminium alloy was reinforced with silicon carbide and multi-walled carbon nanotubes using squeeze casting.
  • Hybrid reinforcements were added at 5, 10, 15, and 20 wt.% with a 2:1 SiC-to-MWCNT ratio.
  • 100 MPa pressure was applied during solidification to enhance microstructure uniformity.
  • Composites exhibited improvements in hardness, yield strength, and ultimate tensile strength with increased reinforcement levels.
  • Squeeze casting reduced porosity and improved microstructure uniformity.
  • Machinability assessments showed lower cutting forces and improved surface quality compared to composites with SiC only.

Abstract

The present work reveals the A356 aluminium alloy reinforced with a mix of silicon carbide (SiC) and multi-walled carbon nanotubes (MWCNTs), using a combined stir cum squeeze casting route. The hybrid reinforcements were introduced at 5, 10, 15 and 20 wt.% while keeping a 2:1 SiC-to-MWCNT ratio. Applying 100 MPa pressure during solidification reduced porosity and helped the particles settle into a much more uniform microstructure. As the reinforcement level increased, the composites showed steady improvements in hardness, yield strength and ultimate tensile strength. These gains appear to branch from the rise in thermally induced dislocation density caused by the mismatch in thermal expansion between the reinforcements and the aluminium matrix. The machinability results were a quite complicated. Higher cutting speeds generally lowered cutting forces, and the hybrid reinforcements helped minimise built-up edge formation, which in turn improved surface quality. At similar machining conditions, the cutting forces of the hybrid composites were consistently lower than typical values reported for composites reinforced with SiC alone. At the end, the study shows that stir cum squeeze casting is a reliable way to produce dense, mechanically strong A356 hybrid composites with encouraging machinability characteristics. These findings position the material as a promising option for lightweight components, especially where both strength and workability matter.

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Cite This Study

Pathinettampadian et al. (2026) studied this question.

synapsesocial.com/papers/69fbf004164b5133a91a42f6https://doi.org/10.1177/00219983261449428
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