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Hot Deformation Behavior of a Ti-40Al-10V Alloy with Quenching-Tempering Microstructure

机译:Ti-40Al-10V合金具有淬火式高温微观结构的热变形行为

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摘要

In this study, a Ti-40Al-10V alloy with quenching-tempering microstructure was prepared and was characterized by ultra-large β/B2 grains and submicrocrystalline γ laths within it. A definite Kurdjumov-Sachs orientation was identified between the β/B2 and γ phase. Isothermal compression tests were performed to examine the hot deformation behavior at various temperatures and strain rates. Based on the hyperbolic-sine equation, the deformation kinetics of the alloy were characterized by unexpectedly high activation energy (384 kJ/mol) and low stress exponent (2.25). For all the deformed samples, continuous dynamic recrystallization intensively occurred in the β matrix, accompanied by the simultaneous rotation of the γ laths. Moreover, a preferential orientation of <100>β and <111>γ parallel to the compression axis was observed for β and γ phase, respectively. With the decreasing strain rates, the grain boundary/interface sliding gradually became prominent, which resulted in some superplastic deformation features, e.g., intensive strain-induced grain growth and interface migration, enhancing “wetting” of the γ grain boundaries, continuous weakening/vanishing of the local texture, etc. Meanwhile, the temperature played an insignificant role in the hot deformation behavior. The deformation mechanism was discussed in detail based on the microstructural observations and deformation kinetics.
机译:在该研究中,制备了具有猝倒微观结构的Ti-40Al-10V合金,其特征在于其中的超大β/ B2颗粒和亚微晶γ板条。在β/ B2和γ相之间鉴定了一个明确的Kurdjumov-Sachs取向。进行等温压缩试验以检查各种温度和应变率的热变形行为。基于双曲线 - 正弦方程,通过意外的高活化能量(384kJ / mol)和低应力指数(2.25)表征合金的变形动力学。对于所有变形样品,连续动态再结晶在β基质中发生得分,伴随着γ板条的同时旋转。此外,对于β和γ相,观察到平行于压缩轴的<100β和<111>γ的优先取向。随着应变速率的降低,晶界/界面滑动逐渐突出,导致一些超塑性变形特征,例如强烈的应变诱导的晶粒生长和界面迁移,增强了γ晶界的“润湿”,连续削弱/消失同时,局部纹理等,温度在热变形行为中发挥了微不足道的作用。基于微观结构观察和变形动力学详细讨论了变形机制。

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