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January 25, 2026Metals0 citationsOpen Access

Synergistic Regulation of Microstructure and Mechanical Property in TiAl Alloys via Rolling and Cyclic Heat Treatment

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STShiwei TianZLZhiqian LiaoDSDejun Song

Key Points

  • This research aims to explore the combined effects of rolling and heat treatment on the microstructure and mechanical properties of TiAl alloys.
  • Conducted pack rolling on Ti-44Al-4Nb-1.5Mo-0.1B-0.1Y alloy sheets with two deformation levels (R7 and R11).
  • Applied cyclic heat treatments at various temperatures (1150–1350 °C) and specifically at 1250 °C.
  • Analyzed the microstructure evolution related to phase transformations and mechanical property improvements.
  • Higher deformation level (R11) led to extensive dynamic recrystallization, resulting in a refined microstructure.
  • Heat treatment at 1250 °C significantly transformed the microstructure and reduced the β/B2 phase content.
  • Cyclic heat treatment reduced the β-phase to 4.1% after 9 cycles, improving tensile strength by 15.5% and elongation by 8.3% compared to the initial state.

Abstract

The presence of the brittle β/B2 phase in TiAl alloys often deteriorates their mechanical properties, posing a significant challenge for manufacturing large-sized, high-performance sheets. To address this issue, this study systematically investigates the synergistic effect of pack rolling and subsequent heat treatment on the microstructure evolution and mechanical properties of a Ti-44Al-4Nb-1.5Mo-0.1B-0.1Y alloy. Sheets with two different deformation levels (R7: 69.8% and R11: 83.0% reduction) were prepared via pack rolling. This was followed by a series of heat treatments at different temperatures (1150–1350 °C) and cyclic heat treatments at 1250 °C (3, 6, and 9 cycles). The results demonstrate that the higher deformation level (R11) promoted extensive dynamic recrystallization, resulting in a uniform microstructure of equiaxed γ, α2, and β phases, while the lower deformation (R7) retained a significant fraction of deformed γ/α2 lamellae. Heat treatment at 1250 °C was identified as optimal for transforming the microstructure into fine lamellar colonies while effectively reducing the β/B2 phase. Cyclic heat treatment at this temperature further decreased the β-phase content to 4.1% after 9 cycles. The elimination mechanism was determined to follow the β→ α → γ + α2 phase transformation sequence, driven by the combined effect of rolling-induced defects and cyclic thermal stress. Cyclic heat treatment at this temperature was particularly effective in generating a high density of nucleation sites within the lamellar colonies, leading to significant refinement of the lamellar structure. Consequently, the R11 sheet subjected to 9 cycles of heat treatment exhibited a 15.5% increase in tensile strength and an 8.3% improvement in elongation compared to the hot-isostatically pressed state. This enhancement is primarily attributed to the significant refinement of lamellar colonies and the reduction in interlamellar spacing. This work presents an effective integrated processing strategy for fabricating high-performance TiAl alloy sheets with superior strength and toughness.

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Cite This Study

Tian et al. (2026) studied this question.

synapsesocial.com/papers/6975b1eafeba4585c2d6d6c6https://doi.org/10.3390/met16010126
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