High-Density Deformation Nanotwin Further Improved Tensile Strength of Polycrystalline γ-TiAl-Based Intermetallic Alloy

Shiqiu Liu, H. Ding, Ruirun Chen, Jingjie Guo, H. Fu
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Abstract

Strengthening of TiAl-based intermetallic alloy is vital for its broader application, however, microstructural refinement through conventional processes is difficult to further strengthen this intermetallic alloy. Although high-density deformation nanotwin is expected to effectively strengthen it, there is still lack of in-depth understanding about the strengthening mechanism of high-density deformation nanotwin in TiAl-based alloy. Herein the microstructures, room-temperature (RT) tensile properties, tensile fracture behavior, and deformation mechanism of the Ti-45.5Al-4Cr-2.5Nb (at.%) master alloy (M. A.) as well as its continuous casting (C. C.) alloy and the heat-treated alloys were systematically investigated. After the C. C. alloy was annealed at 1250 °C for 2 hours, the volume fraction of (B2+γ) coupled structures in the original grains reached the minimum, the interlamellar spacing was markedly refined; besides, substantial Shockley partial dislocations and stacking faults were generated in γ phase. During RT tension, both the dominant deformation mechanisms of the M. A. and C. C. alloy were dislocation slip, while that of the 2h heat-treated alloy was changed into deformation twinning. High-density deformation nanotwins were generated in the γ phase (especially the γ lamellae) of the 2h heat-treated alloy, which improved the tensile strength of the M. A. by 79%. High-density deformation nanotwins can further strengthen TiAl-based alloy to a large extent, which is mainly attributed to the fact that their batch-to-batch generation in the polycrystalline TiAl-based alloy during tension could considerably relief the stress concentration in addition to effectively improving the work-hardening rate, thus making the work-hardening rate keeping stable.
高密度变形纳米孪晶进一步提高了多晶γ- tial基金属间合金的抗拉强度
钛基金属间合金的强化对其广泛应用至关重要,然而,通过传统工艺进行显微组织细化难以进一步强化这种金属间合金。虽然高密度变形纳米孪晶有望有效强化tial基合金,但目前对高密度变形纳米孪晶在tial基合金中的强化机理还缺乏深入的了解。本文系统地研究了Ti-45.5Al-4Cr-2.5Nb (at.%)中间合金(m.a.)及其连铸合金(c.c.)和热处理合金的显微组织、室温(RT)拉伸性能、拉伸断裂行为和变形机理。在1250℃下退火2h后,原晶粒中(B2+γ)偶联组织的体积分数达到最小,层间间距明显细化;此外,在γ相中产生了大量的Shockley部分位错和层错。在高温拉伸过程中,m.a.和c.c.合金的主要变形机制都是位错滑移,而2h热处理合金的主要变形机制则转变为变形孪晶。2h热处理合金的γ相(尤其是γ片层)产生高密度形变纳米孪晶,使合金的抗拉强度提高了79%。高密度变形纳米孪晶可以在很大程度上进一步强化tial基合金,这主要是由于在拉伸过程中,纳米孪晶在多晶tial基合金中批量生成,在有效提高加工硬化速率的同时,还能显著缓解应力集中,从而使加工硬化速率保持稳定。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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