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Microstructural Evolution in High-Strain-Rate Deformation of Ti-5Al-5Mo-5V-1Cr-1Fe Alloy

机译:Ti-5Al-5Mo-5V-1Cr-1Fe合金高应变速率变形的组织演变

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摘要

To study the microstructural evolution in high-strain-rate shear deformation of Ti-5Al-5Mo-5V-1Cr-1Fe (Ti-55511) alloy, a series of forced shear tests of hat-shaped specimens have been conducted using a split Hopkinson pressure bar combined with the “strain-frozen” technique. A localized shear band is induced in Ti-55511 alloy in these tests. The experimental results demonstrate that the flow stress in hat-shaped specimens remains constant (about 600 MPa) and is independent of punching depth. The width of the adiabatic shear band increases with increasing punching depth and tends to saturate at 30 μm, and the estimation of the adiabatic shear band (ASB) width in hat-shaped (HS) specimens has been modified. Relying on the experimental results, thermal softening has a minor effect on the onset of the adiabatic shear band and dynamic recrystallization formation, and the nucleation mechanism for dynamic recrystallization is strain-induced boundary migration and subgrain rotation and coalescence. In addition, we suggest the concept of adhesive fracture as the dynamic failure mechanism for Ti-55511 alloy.
机译:为了研究Ti-5Al-5Mo-5V-1Cr-1Fe(Ti-55511)合金在高应变率剪切变形中的微观组织演变,已使用剖开式Hopkinson进行了一系列帽状样品的强制剪切试验。压力棒结合“应变冻结”技术。在这些测试中,在Ti-55511合金中产生了局部剪切带。实验结果表明,帽形试样中的流应力保持恒定(约600 MPa),并且与冲压深度无关。绝热剪切带的宽度随冲压深度的增加而增加,并趋于在30μm处饱和,并且帽形(HS)样品中绝热剪切带(ASB)宽度的估计已修改。根据实验结果,热软化对绝热剪切带和动态再结晶形成的影响较小,而动态再结晶的成核机理是应变诱导的边界迁移以及亚晶粒旋转和聚结。此外,我们建议将粘合剂断裂的概念作为Ti-55511合金的动态破坏机理。

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