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Twinning in rolled AZ31B magnesium alloy under free-end torsion

机译:在自由端扭转下滚动AZ31B镁合金孪生

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The mechanical response and microstructure evolution in a rolled AZ31B magnesium alloy were experimentally characterized using companion thin-walled tubular specimens under free-end monotonic torsion. The tubular specimens were made with their axes along the normal direction of the rolled magnesium plate. The shear stress-shear strain response shows a subtle sigmodal shape that is composed of four distinctive stages of strain hardening. Basal slips and tension twinning are operated throughout the shear deformation. Both tension twinning and compressing twinning are favored. Growth and interaction of tension twins with multiple variants lead to formation of twin-twin boundaries (TTBs). The collective hardening effects by twin boundary (TB) and TTB result in a unique rise of the strain hardening rate in Stage Ⅱ and Ⅲ. In addition to primary twins, tension-compression double twins and tension-compression-tension tertiary twins with detectable sizes are observed in the tension-twin favorable grains whereas compression-tension double twins are detected in the tension-twin unfavorable grains; all of which become more observable with the increasing shear strain. During Stage Ⅳ deformation where TTB formation exhausts, non-basal prismatic slips become more significant and are responsible for the progressive decrease in strain hardening rate in this stage. Swift effect, which is commonly observed in textured materials, is evidenced under free-end torsion. The origin of Swift effect is confirmed to be dislocation slips at a shear strain less than 5% but is predominantly due to tension twinning at a larger plastic strain.
机译:在自由端单调扭转下使用伴随薄壁管状标本进行实验表征卷式AZ31B镁合金中的机械响应和微观结构演化。管状标本沿着卷镁板的法线方向制成。剪切应力 - 剪切应变响应显示了一种微妙的SigModal形状,其由四个株的应变硬化阶段组成。在整个剪切变形中操作基底滑动和张力孪晶。扭曲孪生和压缩孪生都受到青睐。张力双胞胎与多种变体的生长和相互作用导致形成双对双界(TTB)。双边界(TB)和TTB的集体硬化效应导致ⅡAitⅡ和Ⅲ期菌株硬化率的独特升高。除初级双胞胎外,张力 - 压缩双胞胎和张力 - 压缩张力叔双胞胎在张力 - 双胞胎良好的颗粒中观察到具有可检测尺寸的张力,而在张力 - 双胞胎中检测到压缩张力双胞胎;随着剪切菌株的增加,所有这些都变得更加可观察。在阶段⑤在TTB形成排气的变形期间,非基础棱柱滑动变得更加显着,并且负责该阶段的应变硬化率的逐渐降低。在纹理材料中通常观察到的Swift效果在自由终扭转下证明。 Swift效应的起源被证实是剪切应变的位错滑动小于5%,但主要是由于较大的塑性菌株的张力孪生。

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