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High strain rate superplastic flow stress and post-deformation mechanical properties of mechanically alloyed 2024 aluminium alloy reinforced with SiC particles

机译:SiC颗粒增强的机械合金化2024铝合金的高应变速率超塑性流动应力和变形后的力学性能

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Composites consisting of 2024 aluminium alloys reinforced with volume fractions of 0, 5, 10, and 15 vol.-% of SiC particles were fabricated from the mechanically alloyed powders by an optimised hot compactions and prestraining process. Fine and equiaxed grain structures with grain sizes of <1 mu m were observed within the matrix of each alloy. The composite specimens were compressed at temperatures between 733 and 813 K with a wide strain range from 10(-3) to 10 s(-1). Two strain rate regions with different slopes from similar to 5 x 10(-1) s(-1) were found in log (true stress)-log (strain rate) curves. In the lower strain rate region of each alloy, the strain rate sensitivity values m were 0.03-0.16. The threshold stress sigma(th) for each alloy was estimated using an extrapolation procedure. A linear relationship was found between V-f(0.5) and sigma(th) where V-f is the volume fraction of SiC particles. In the higher stain rate region of each alloy, m values greater than 0.3 were obtained at 773 K, which is very close to the solidus temperature of 775 K for 2024 aluminium alloy. Moreover, the maximum yield strength and elongation for each alloy at room temperature were also obtained in the specimens compressed at 773 K. Thus, it was found that the optimum temperature for the high strain rate superplastic processing of the specimens compressed at 773 K. Thus, it was found that the optimum temperature for the high stain rate superplastic processing of the composites was just below the solidus temperature of the 2024 aluminium alloy. The grain coarsening resulted in the decrease of post-deformation strength and ductility as well as the m value in hot compression above the solidus temperature. (C) 1997 The Institute of Materials.
机译:由机械合金化粉末通过优化的热压实和预应变工艺制成了2024铝合金,其中复合材料的体积分数分别为SiC颗粒的0、5、10和15(体积)%。在每种合金的基体中均观察到晶粒尺寸小于1微米的细小等轴晶组织。复合材料试样在733至813 K之间的温度下被压缩,应变范围从10(-3)到10 s(-1)。在对数(真实应力)-对数(应变率)曲线中发现了两个斜率不同的应变率区域,它们的斜率与5 x 10(-1)s(-1)相似。在每种合金的较低应变率区域中,应变率灵敏度值m为0.03-0.16。使用外推法估算每种合金的阈值应力sigma(th)。在V-f(0.5)和sigma(th)之间发现线性关系,其中V-f是SiC颗粒的体积分数。在每种合金的较高污染率区域中,在773 K处获得的m值大于0.3,这非常接近2024铝合金的775 K的固相线温度。此外,还获得了在773 K压缩的试样中每种合金在室温下的最大屈服强度和伸长率。因此,发现对于在773 K压缩的试样进行高应变率超塑性加工的最佳温度。 ,发现复合材料的高污染率超塑加工的最佳温度刚好低于2024铝合金的固相线温度。晶粒的粗化导致变形后强度和延展性的降低,以及高于固相线温度的热压缩中的m值的降低。 (C)1997材料研究所。

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