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December 8, 2025Journal of Manufacturing and Materials Processing2 citationsOpen Access

Process Optimization, Microstructure and Mechanical Properties of SiC + TiB2/AlSi10Mg Composites Fabricated by Laser-Directed Energy Deposition

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XZXin ZhangSZSiyu ZhangYPYijie Peng

Key Points

  • The tensile strength of TiB2/AlSi10Mg composites increased by 21.4% compared to LDED-fabricated AlSi10Mg alloy.
  • Relative densities of SiC + TiB2/AlSi10Mg composites achieved up to 98.9%, enhancing formability overall.
  • Experimental methods included microstructural characterization combined with mechanical testing to determine failure mechanisms.
  • Ductile fracture predominated in the composites, despite defects that promoted secondary crack propagation.

Abstract

In this study, TiB2/AlSi10Mg, 2 wt.% SiC + TiB2/AlSi10Mg, and 5 wt.% SiC + TiB2/AlSi10Mg composite powders were prepared via high-energy ball milling. For the first time, TiB2 and SiC hybrid particle-reinforced aluminum matrix composites (AMCs) were fabricated using the Laser-Directed Energy Deposition (LDED) technique. The effects of processing parameters on the microstructure evolution and mechanical properties were systematically investigated. Using areal energy density as the main variable, the experiments combined microstructural characterization and mechanical testing to elucidate the underlying strengthening and failure mechanisms. The results indicate that both 2 wt.% and 5 wt.% SiC + TiB2/AlSi10Mg composites exhibit excellent formability, achieving a relative density of 98.9%. However, the addition of 5 wt.% SiC leads to the formation of brittle Al4C3 and TiC phases within the matrix. Compared with the LDED-fabricated AlSi10Mg alloy, the tensile strength of the TiB2/AlSi10Mg composite increased by 21.4%. In contrast, the tensile strengths of the 2 wt.% and 5 wt.% SiC + TiB2/AlSi10Mg composites decreased by 3.7% and 2.6%, respectively, mainly due to SiC particle agglomeration and the consumption of TiB2 particles caused by TiC formation. Nevertheless, their elastic moduli were enhanced by 9% and 16.3%, respectively. Fracture analysis revealed that the composites predominantly exhibited ductile fracture characteristics. However, pores larger than 10 μm and SiC/TiB2 clusters acted as crack initiation sites, inducing stress concentration and promoting the propagation of secondary cracks.

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Cite This Study

Zhang et al. (2025) studied this question.

synapsesocial.com/papers/69401f0f2d562116f28fa341https://doi.org/10.3390/jmmp9120404
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