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Strain-Rate Dependence of Compressive Yield Strength of Titanium Grade 4 with Coarse-Grained and Ultrafine-Grained Structures: Experimental Results and Theoretical Calculation

机译:钛级4具有粗粒和超细粒结构的压缩屈服强度的应变率依赖性:实验结果和理论计算

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The nanocrystalline (NC) and ultrafine-grained (UFG) structures of metallic materials can lead to their extraordinary high strength. However, most of the papers on this topic consider deformation parameters of NC and UFG materials only for the case of quasi-static tensile tests. Characteristics of dynamic strength and fracture of such materials remain unexplored. This paper presents a study of the mechanical behavior of pure titanium Grade 4 with a coarse-grained (CG) and UFG structure under uniaxial compression with different strain rates. The UFG structure was provided using the method of equal-channel angular pressing. The dynamic compression was carried out on a setup with the Split-Hopkinson pressure bar. It is found that in the observed range of strain rates 10~(-3)-3 -10~3 s~(-1), the yield stress of the CG titanium increases by 20%, and does not exceed the yield stress of the UFG titanium. However, the yield stress of the UFG titanium remains close to a quasi-static value. It is shown that these strain-rate dependencies of the yield strength can be predicted by the incubation time approach. The calculated curves show that at strain rates above 10 s~(-1) the yield stress of the CG titanium becomes higher than the yield strength of the UFG titanium.
机译:金属材料的纳米晶(NC)和超细晶粒(UFG)结构可导致其非凡的高强度。然而,大多数关于该主题的论文仅考虑NC和UFG材料的变形参数,仅针对准静态拉伸试验的情况。这种材料的动态强度和骨折的特征仍未开发。本文提出了具有不同应变率的单轴压缩下纯钛级4的力学行为和UFG结构的研究。使用相等通道角压制的方法提供UFG结构。用分流霍普金森压杆进行动态压缩。发现在观察到的应变率范围内10〜(-3)-3 -10〜3 s〜(-1),CG钛的屈服应力增加了20%,并且不超过屈服应力UFG钛。然而,UFG钛的屈服应力保持接近准静态值。结果表明,通过孵育时间方法可以预测屈服强度的这些应变速率依赖性。计算的曲线表明,在高于10 s〜(-1)的应变率,Cg钛的屈服应力变得高于UFG钛的屈服强度。

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