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Microstructure evolution of Ti-6Al-2Zr-1Mo-1V alloy and its mechanism in multi-pass flow forming

机译:Ti-6AL-2ZR-1MO-1V合金的微观结构演化及其在多通流动形成中的机制

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Multi-pass flow forming processes are one of the major approaches to producing thin-walled titanium cylindrical parts with large cross-sections in which microstructure characteristics have a significant effect on the tailoring of desirable properties. In this study, the microstructure evolution of the Ti-6Al-2Zr-1Mo-1V alloy and its mechanism in a multi-pass flow forming process are systematically studied based on the deformation characteristics during the process. The results show that waved grains formed in the process are due to the compressive stress in the rolling direction (RD) and the non-uniform stress field in the deformation area. With the compression and shear deformation induced in multi-pass flow forming, non-standard {0002} basal plane texture is formed whose {0002} poles are tilted from the normal direction (ND) to the RD and the circumferential direction (CD) with an angle of 20 and 30, respectively. It is found that a grains are refined by two mechanisms, viz., continuous dynamic recrystallization (CDRX) and deformation-induced intense and localized shearing (DILS). CDRX mainly promotes secondary a grain refinement, while DILS has significant effects on primary a grain refinement under the larger deformation and on secondary a grain refinement during the entire process. Meanwhile, the grains refined by DILS with different orientations facilitate further deformation. This effect of grain refinement leads to improvement of the yield strength in the RD and the CD by 12.42% and 19.05%, respectively, compared annealed samples of the cylindrical part with the original one. These findings provide a basis for microstructure control and property tailoring of Ti-6Al-2Zr-1Mo-1V cylindrical parts in flow forming processes.
机译:多通流量形成方法是生产具有大横截面的薄壁钛圆柱形部件的主要方法之一,其中微结构特性对所需性质的剪裁具有显着影响。在该研究中,基于该过程中的变形特性,系统地研究了Ti-6AL-2ZR-1MO-1V合金及其在多遍流体形成过程中的机理的微观结构演化。结果表明,在该过程中形成的挥动晶粒是由于滚动方向(RD)中的压缩应力和变形区域中的不均匀应力场。利用多通流形成中引起的压缩和剪切变形,形成非标准{0002}基底平面纹理,其{0002}杆从正常方向(nd)倾斜到RD和圆周方向(CD)角度分别为20和30。发现晶粒由两种机制,viz,连续动态再结晶(CDRX)和变形诱导的强烈和局部剪切(DILS)改进。 CDRX主要促进二次谷物改进,而DIMS对较大变形下的晶粒细化具有显着影响,并在整个过程中进行次级晶粒细化。同时,由不同取向的DILS精制的晶粒有助于进一步变形。晶粒细化的这种效果可分别将RD和CD的屈服强度提高12.42%和19.05%,与原始的圆柱形部分的与圆柱形部分的退火样品分别。这些发现为流动成型工艺中的Ti-6Al-2ZR-1MO-1V圆柱形部件提供了微观结构控制和性质剪裁的基础。

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