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Superplasticity in Fine Grain Ti-6Al-4V Alloy: Mechanical Behavior and Microstructural Evolution

机译:细晶粒Ti-6Al-4V合金的超塑性:力学行为和微观结构演变

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Titanium Ti-6Al-4V alloys are known to exhibit interesting superplastic properties for different conditions of temperature and strain rate, depending on the initial grain size. Even if superplasticity is generally explained in terms of grain boundary sliding (GBS) accompanied by several accommodation mechanisms, it appears that the micromechanisms of superplasticity are still controversial especially at the grain scale and even more at lower scale. These micromechanisms, involving microstructural evolution, depend also on the SPF conditions (temperature, strain rate and initial microstructure). In this study, the flow stress in the Ti-6Al-4V alloy is investigated for different strain rate and for temperature in the range of the α/β transformation. The preferred orientation evolution of alpha phase grains for different percentage of deformation is studied for a non-optimal SPF regime (920℃-10~(-4) s~(-1)) in order to highlight the microstructural evolution and so the deformation mechanisms involved. For that, mechanical interrupted test combined with Scanning Electron Microscopy (SEM) and Electron Back Scatter Diffraction (EBSD) are used.
机译:众所周知,Ti-6Al-4V钛合金在不同的温度和应变速率条件下会表现出令人感兴趣的超塑性,这取决于初始晶粒尺寸。即使通常用伴随多种调节机制的晶界滑动(GBS)来解释超塑性,但看来超塑性的微观机制仍存在争议,尤其是在晶粒尺度上,甚至在较低尺度下更是如此。这些涉及微观结构演变的微观机制还取决于SPF条件(温度,应变速率和初始微观结构)。在这项研究中,研究了在不同应变速率和温度下在α/β相变范围内的Ti-6Al-4V合金中的流动应力。研究了非最佳SPF条件(920℃-10〜(-4)s〜(-1))下α相晶粒在不同变形百分比下的择优取向演化,从而突出了微观组织演化,从而揭示了变形涉及的机制。为此,使用了结合了扫描电子显微镜(SEM)和电子背散射衍射(EBSD)的机械中断测试。

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