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March 19, 2026Advanced Engineering Materials0 citations

Mechanical Property Enhancement Mechanism of W/TC4 Composites by Laser‐Directed Energy Deposition

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TDTengda DiCGChongyu GuJSJianghao Sui

Key Points

  • The central aim is to investigate how adding tungsten (W) enhances the mechanical properties of titanium-based composites.
  • Prepared W/TC4 composites using laser-directed energy deposition technology.
  • Analyzed the melting and precipitation processes of W particles.
  • Conducted friction and wear tests to assess performance changes.
  • Measured microhardness and grain size variations with different W additions.
  • W addition resulted in significant grain refinement, with 70 wt% W yielding a β-Ti grain size of 14.34 μm.
  • Microhardness increased with W content, peaking at 472.9 ± 29.7 HV 0.2 for 70 wt% W.
  • A pronounced reduction in material anisotropy was noted with higher W content.
  • Surface wear properties showed an increasing trend with rising W proportions.

Abstract

Titanium‐based composites represent one of the key development directions for new materials in aerospace applications. In this article W/TC4 composites with high W addition (wt%) were prepared by laser‐directed energy deposition technology. The melting of W particles and the precipitation process of W dendrites were revealed. The mechanism of W addition on microstructure refinement and mechanical properties improvement of composites was described. The results indicate that W particles form a strong metallurgical bond with the Ti alloy matrix, and dendritic or granular substitution solid solutions composed of W and Ti have appeared within the Ti alloy matrix. The addition of W exhibits a pronounced effect on grain refinement. In composite specimens containing 70 wt% W, the average grain size of β‐Ti reached 14.34 μm, which is over 40% smaller than that observed in specimens with 50 wt% W. Furthermore, the anisotropy of the composite material significantly decreased with increasing W content. As the W content increases, the microhardness of the composite material gradually rises. Among them, the microhardness of the W 70 wt% specimen reached 472.9 ± 29.7 HV 0.2 . The increase in microhardness is primarily attributed to the load‐bearing strengthening effect of unmelted W particles and the solid solution strengthening effect of the W element. Furthermore, friction and wear tests indicate that both the arithmetic average height and mean square height of the wear surface gradually increase with the rising proportion of W addition.

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Cite This Study

Di et al. (2026) studied this question.

synapsesocial.com/papers/69bb92be496e729e62980559https://doi.org/10.1002/adem.202502406
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