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May 9, 2026Journal of Materials Research and Technology1 citationsOpen Access

Optimizing the microstructural evolution and wear performance of cold-sprayed Ti6Al4V-TiNp coatings by heat treatment

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JLJichao LiangBLBowen LiuDLDanyang Liu

Key Points

  • This research aims to improve the wear resistance of cold-sprayed titanium coatings through optimized heat treatment.
  • Employing a hybrid technique of laser processing and micro-forging assisted cold spraying.
  • Investigating solid-solution and aging heat treatments on the microstructural evolution and wear performance.
  • Utilizing a composite coating with a relative density of 99.35%.
  • Achieved maximum microhardness of 558.03 HV under HT2 treatment regime.
  • Wear rate reduced to 0.46×10 -4 mm 3 /(N⋅m), a decrease of 77.1% compared to Ti6Al4V sheet.
  • Transitioned wear mechanism from particle detachment to mild abrasive wear with protective film formation.

Abstract

To enhance the wear resistance of cold-sprayed titanium coatings, a hybrid technique combining initial laser processing with subsequent micro-forging assisted cold spraying was employed to fabricate a highly relative density (99.35%) Ti6Al4V-TiNp composite coating. The regulation mechanisms of solid-solution and aging heat treatment on its microstructure and wear performance were systematically investigated. The robust metallurgical bonding between TiN particles and the titanium matrix is facilitated by the in-situ formation of the Ti 2 N phase under the optimized heat treatment regime (HT2: 850 °C solution treatment followed by 550 °C aging), and the cohesive strength among Ti6Al4V powder particles is also improved. Dispersed intragranular β-Ti nanocrystals and intergranular β laths are precipitated in the matrix, and the strengthening and toughening design of the matrix is achieved via the Orowan looping mechanism and the inherent plasticity of the β phase itself. Under the HT2 regime, the composite coating achieved the highest microhardness (reaching 558.03 HV) and optimal wear resistance. Its wear rate was as low as 0.46×10 -4 mm 3 /(N⋅m), representing reductions of 77.1% and 72.1% compared to the Ti6Al4V sheet and the as-sprayed coating, respectively. The wear mechanism transitioned from the mixed mode dominated by particle detachment in the as-sprayed state to mild abrasive wear characterized by the formation of a continuous protective transfer film. The improved wear performance under HT2 is associated with the combined effects of enhanced interfacial bonding, matrix strengthening, and increased coating hardness.

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Cite This Study

Liang et al. (2026) studied this question.

synapsesocial.com/papers/69fece83b9154b0b82875f5chttps://doi.org/10.1016/j.jmrt.2026.04.234
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