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Microstructural evolution and superplastic deformation mechanisms of as- rolled 2A97 alloy at low-temperature

机译:低温轧制2A97合金的组织演变和超塑性变形机理

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摘要

The microstructure and texture evolutions of 2A97 Al-Li alloy with initial unrecrystallized structure during superplastic deformation were investigated. A total elongation of 300% was obtained at 390 degrees C at an initial strain rate of 3 x 10(-3) s(-1). The initial banded structure gradually transformed into a recrystallized structure, characterized by equiaxed grains, random boundary misorientation distribution and a weak texture at high strains. The true strain-stress curve exhibited three stages: work hardening (stage I), steady-state (stage II), and deformation instability regions (stage III). The corresponding deformation mechanisms varied at different stages. The strain rate sensitivity index (m) remained constant of 0.35 and the texture density increased with strain at stage I, where the dislocation creep and subgrain rotation were the dominant mechanisms. During stage II, the m-value increased to 0.44, and the texture density decreased drastically with strain. The combination of grain boundary sliding (GBS) and dislocation creeep could explain the behavior of the alloy. Grain growth and cavitation resulted in the decrease in m-value at stage III, where GBS was the main deformation mechanism.
机译:研究了超塑性变形过程中具有初始未重结晶结构的2A97 Al-Li合金的组织和织构演变。在390摄氏度下以3 x 10(-3)s(-1)的初始应变率获得300%的总伸长率。最初的带状结构逐渐转变为重结晶结构,其特征为等轴晶,随机边界取向差分布和高应变下的弱织构。真实的应变-应力曲线表现为三个阶段:加工硬化(阶段I),稳态(阶段II)和变形不稳定区域(阶段III)。相应的变形机制在不同阶段有所不同。应变速率敏感性指数(m)保持恒定为0.35,并且在第一阶段,结构密度随应变而增加,其中位错蠕变和亚晶粒旋转是主要机制。在第二阶段,m值增加到0.44,并且纹理密度随着应变而急剧下降。晶界滑动(GBS)和位错蠕变的结合可以解释合金的行为。晶粒生长和空化导致III阶段的m值降低,其中GBS是主要的变形机制。

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