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Superplastic Deformation Mechanisms of Superfine/Nanocrystalline Duplex PM-TiAl-Based Alloy

机译:超细/纳米双相PM-TiAl基合金的超塑性变形机理

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摘要

In this paper, the equiaxed superfineanocrystalline duplex PM-TiAl-based alloy with (γ + α2) microstructure, Ti-45Al-5Nb (at %), has been synthesized by high-energy ball milling and vacuum hot pressing sintering. Superplastic deformation behavior has been investigated at 1000 °C and 1050 °C with strain rates from 5 × 10−5 s−1 to 1 × 10−3 s−1. The effects of deformation on the microstructure and mechanical behaviors of high Nb containing TiAl alloy have been characterized and analyzed. The results showed that, the ultimate tensile strength of the alloy was 58.7 MPa at 1000 °C and 10.5 MPa at 1050 °C with a strain rate of 5 × 10−5 s−1, while the elongation was 121% and 233%, respectively. The alloy exhibited superplastic elongation at 1000 and 1050 °C with an exponent (m) of 0.48 and 0.45. The main softening mechanism was dynamic recrystallization of γ grains; the dislocation slip and γ/γ interface twinning were responsible for superplastic deformation. The orientation relationship of γ/γ interface twinning obeyed the classical one: (001)γ//(110)γ.
机译:本文通过高能球磨和真空热压烧结合成了具有(γ+α2)微观结构的等轴超细/纳米双相PM-TiAl基合金Ti-45Al-5Nb(at%)。研究了在1000°C和1050°C下超塑性变形行为,应变率从5×10 −5 s -1 到1×10 -3 < / sup> s -1 。表征和分析了变形对高含铌TiAl合金组织和力学行为的影响。结果表明,合金的极限拉伸强度在1000°C下为58.7 MPa,在1050°C下为10.5 MPa,应变率为5×10 -5 s -1 <伸长率分别为121%和233%。该合金在1000和1050°C下表现出超塑性伸长,指数(m)为0.48和0.45。主要的软化机理是γ晶粒的动态再结晶。位错滑移和γ/γ界面孪晶是超塑性变形的原因。 γ/γ界面孪晶的取向关系遵循经典的:(001)γ//(110)γ。

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