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February 28, 2026Materials0 citationsOpen Access

Investigation of the Strength–Ductility Balance in an Industrial-Grade TC18 Titanium Alloy: The Pivotal Role of β Grain Size

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JWJing WangXZXiaodong ZhanDLDongdong Li

Key Points

  • This study aims to explore the effects of β grain size on the strength-ductility balance in industrial-grade TC18 titanium alloy.
  • Investigated the β grain size of TC18 alloy in a near-industrial forging process.
  • Conducted tension tests at room temperature to assess mechanical properties.
  • Analyzed relationships between β grain size, yield strength, and ductility through empirical observations.
  • Demonstrated an inverse correlation between β grain size and both strength and ductility.
  • Confirmed that the yield strength conforms to the Hall–Petch effect.
  • Identified that below a critical grain size of ~500 μm, stress concentrations are alleviated, improving mechanical performance.

Abstract

The β grain size in titanium alloys during industrial forging is critical for balancing toughness, cost-effectiveness, and processability. To address the industrial challenge of high cost and difficulty in refining β grains to the tens of micrometers scale, this study investigates the feasibility of achieving a superior strength–ductility balance in TC18 alloy with near-industrial coarse β grains (296~857 μm) under room temperature tension. A pronounced inverse correlation is observed between β grain size and both strength and ductility. The yield strength–grain size relationship follows the Hall–Petch effect, while the anomalous increase in ductility for fine-grained specimens is attributed to three factors. First, smaller grains provide a higher grain boundary density, promoting stress redistribution and mitigating stress concentrations. Second, more uniform stress distribution induces thinner, denser kink bands that enhance plasticity. Third, strain-induced martensite evolves from discrete nanoscale particles to discontinuous lines and ultimately coalesces into continuous planar bands along the (112)β and (110)β planes. This phase transformation, which initiates below a critical grain size of ~500 μm, further alleviates stress concentrations towards slip bands and contributes to dynamic work hardening. The findings demonstrate that coordinated deformation mechanisms enable excellent mechanical performance even in coarse-grained microstructures, providing a practical pathway for optimizing industrial-grade titanium alloys.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69a287e20a974eb0d3c03c50https://doi.org/10.3390/ma19050892
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