Javascript must be enabled to continue!
Microstructure and Mechanical Properties of Al6060/TiB2 Aluminum Matrix Composites Produced via Ultrasonically Assisted Stir Casting and Radial-Shear Rolling
View through CrossRef
Lightweight aluminum matrix composites with superior strength and structural integrity are in high demand for next-generation transportation and aerospace applications. In this work, Al6060-based composites reinforced with ≈2 wt.% TiB2 were produced using a hybrid processing route that combines ultrasonically assisted stir casting with radial-shear rolling (RSR). This strategy enabled uniform particle dispersion, strong matrix–reinforcement bonding, and substantial microstructural refinement (grain size 4–6 μm) with reduced porosity. Consequently, the Al6060/TiB2 composites demonstrated substantial gains over the as-cast alloy, combining a yield strength of 108.6 MPa, ultimate tensile strength of 156.9 MPa, and microhardness of 76.3 HV0.2 with a balanced ductility of ~9%. The demonstrated synergy of ultrasound-assisted casting and severe plastic deformation highlights a scalable pathway for fabricating high-performance aluminum composites, positioning them as promising candidates for aerospace, automotive, and other advanced engineering sectors.
Title: Microstructure and Mechanical Properties of Al6060/TiB2 Aluminum Matrix Composites Produced via Ultrasonically Assisted Stir Casting and Radial-Shear Rolling
Description:
Lightweight aluminum matrix composites with superior strength and structural integrity are in high demand for next-generation transportation and aerospace applications.
In this work, Al6060-based composites reinforced with ≈2 wt.
% TiB2 were produced using a hybrid processing route that combines ultrasonically assisted stir casting with radial-shear rolling (RSR).
This strategy enabled uniform particle dispersion, strong matrix–reinforcement bonding, and substantial microstructural refinement (grain size 4–6 μm) with reduced porosity.
Consequently, the Al6060/TiB2 composites demonstrated substantial gains over the as-cast alloy, combining a yield strength of 108.
6 MPa, ultimate tensile strength of 156.
9 MPa, and microhardness of 76.
3 HV0.
2 with a balanced ductility of ~9%.
The demonstrated synergy of ultrasound-assisted casting and severe plastic deformation highlights a scalable pathway for fabricating high-performance aluminum composites, positioning them as promising candidates for aerospace, automotive, and other advanced engineering sectors.
Related Results
Microstructural Evolution and Mechanical Properties of Hybrid Al6060/TiB2–MWCNT Composites Fabricated by Ultrasonically Assisted Stir Casting and Radial-Shear Rolling
Microstructural Evolution and Mechanical Properties of Hybrid Al6060/TiB2–MWCNT Composites Fabricated by Ultrasonically Assisted Stir Casting and Radial-Shear Rolling
This work presents a comprehensive study on the fabrication, microstructural evolution, and mechanical performance of hybrid aluminum matrix composites based on Al6060 alloy reinfo...
Hybrid Al6060/TiB2/Microsilica Composites Produced by Ultrasonically Assisted Stir Casting and Radial-Shear Rolling: Microstructural Evolution and Strength–Ductility Balance
Hybrid Al6060/TiB2/Microsilica Composites Produced by Ultrasonically Assisted Stir Casting and Radial-Shear Rolling: Microstructural Evolution and Strength–Ductility Balance
We report a scalable route to hybrid aluminum matrix composites (AMCs) based on Al6060 (as-fabricated condition) reinforced with 2 wt.% TiB2 and 1 wt.% microsilica, fabricated by u...
Effect of Hot Rolling on the Mechanical and Corrosion Properties of Altib2 Composites
Effect of Hot Rolling on the Mechanical and Corrosion Properties of Altib2 Composites
Aluminium matrix composites reinforced with varying weight percentages (0,2,4,5,6,8 and 10%) of TiB2 were fabricated using the stir casting process and the in-situ approach. The di...
Optimization of preheating temperature for TiB2 reinforcement on the preparation of stir cast LM4 + TiB2 composites and effect of artificial aging on hardness improvement using ANOVA
Optimization of preheating temperature for TiB2 reinforcement on the preparation of stir cast LM4 + TiB2 composites and effect of artificial aging on hardness improvement using ANOVA
This work emphasizes the optimization of preheating temperature of TiB2 reinforcement powder with LM4 composites, and statistical analysis for predicting hardness improvement durin...
Radial crossover and unsuccessful radial access during coronary angiography or percutaneous coronary intervention: insights from the FORCE-ACS registry
Radial crossover and unsuccessful radial access during coronary angiography or percutaneous coronary intervention: insights from the FORCE-ACS registry
Abstract
Background
Radial crossover and unsuccessful radial access during coronary angiography or percutaneous coronary interve...
Effect of Y-TZP on Mechanical Properties of Al2O3-TiB2 Ceramics
Effect of Y-TZP on Mechanical Properties of Al2O3-TiB2 Ceramics
The effect of Y-TZP additive on the mechanical properties of Al2O3-TiB2 ceramics was investigated. The results indicate that Y-TZP additive can enhance the flexure strength and fra...
The coherent growth and mechanical properties of non-isostructural TiN/TiB2 nanomultilayers
The coherent growth and mechanical properties of non-isostructural TiN/TiB2 nanomultilayers
TiN/TiB2 nanomutlialyers with different TiB2 layer thickne ss were prepared using multi-target magnetron sputtering method. The effects of TiB2 layer thickness on the growth stru...
Wear Properties of Metal Matrix Composite Al-Cu and Al-Cu-TiB<sub>2</sub>
Wear Properties of Metal Matrix Composite Al-Cu and Al-Cu-TiB<sub>2</sub>
Tensile and wear properties of aluminium (Al) based metal matrix composites (MMCs) was prepared by added titanium diboride (TiB2) with in-situ technique by salt route. The salts us...

