High-temperature cyclic oxidation kinetics and microstructural transition mechanisms of Ti-6Al-4V composites reinforced with hybrid (TiC+TiB) networks
Shaolou Wei, Lujun Huang, Xinting Li, Qi An, Lin Geng

TL;DR
This study investigates the high-temperature oxidation behavior of Ti-6Al-4V composites reinforced with hybrid TiC+TiB networks, revealing microstructural influences and mechanisms that enhance oxidation resistance at elevated temperatures.
Contribution
It introduces a novel hybrid reinforcement approach that improves oxidation resistance and elucidates the microstructural mechanisms involved.
Findings
Hybrid reinforcements improve oxidation resistance more than single reinforcements.
Oxidation kinetics transition from parabolic to linear with increasing temperature.
A phenomenological model explains oxide scale growth and failure mechanisms.
Abstract
The microstructural features and high-temperature oxidation resistance of hybrid (TiC+TiB) networks reinforced Ti-6Al-4V composites were investigated after fabricated with reaction hot pressing technique. The inhomogeneous distribution of hybrid reinforcers resulted in a sort of stress-induced grain refinement for {\alpha}-Ti matrix phase, which was further facilitated by heterogeneous nucleation upon additive interfaces. HRTEM analyses revealed the crystallographic orientation relation between TiB and alpha-Ti phases as (201)TiB//(-1100)alpha-Ti plus [11-2]//[0001] alpha-Ti, while TiC and {\alpha}-Ti phases maintained the interrelation of (-200)TiC//(-2110) {\alpha}-Ti and [001]TiC//[01-10] alpha-Ti. The hybridly reinforced Ti-6Al-4V/(TiC+TiB) composites displayed superior oxidation resistance to both the sintered matrix alloy and the two composites reinforced solely with TiC or TiB…
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