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Orientation dependent slip and twinning during compression and tension of strongly textured magnesium AZ31 alloy

机译:强织构镁AZ31合金在压缩和拉伸过程中取决于方向的滑动和孪生

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摘要

Over recent years there have been a remarkable number of studies dealing with compression of magnesium. A literature search, however, shows a noticeably less number of papers concerned with tension and a very few papers comparing both modes, systematically, in one study. The current investigation reports the anisotropic deformation behavior and concomitant texture and microstructure evolution investigated in uniaxial tension and compression tests in two sample directions performed on an extruded commercial magnesium alloy AZ31 at different Z conditions. For specimens with the loading direction parallel to the extrusion axis, the tension-compression strength anisotropy was pronounced at high Z conditions. Loading at 45° from the extrusion axis yielded a tension-compression strength behavior that was close to isotropic. During tensile loading along the extrusion direction the extrusion texture resists twinning and favors prismatic slip (contrary to compression). This renders the shape change maximum in the basal plane and equal to zero along the c-axis, which resulted in the orientation of individual grains remaining virtually intact during all tension tests at different Z conditions. For the other investigated sample direction, straining was accommodated along the c-axis, which was associated with a lattice rotation, and thus, a change of crystal orientation. Uniaxial compression at a low Z condition (400 ℃/10~(-4) s~(-1)) yielded a desired texture degeneration, which was explained on the basis of a more homogeneous partitioning of slip systems that reduces anisotropy and enhanced dynamic recrystallization (DRX), which counteracts the strong deformation texture. The critical strains for the nucleation of DRX in tensiled specimens at the highest investigated Z condition (200 ℃/10~(-2) s~(-1)) were found to range between 4% and 5.6%.
机译:近年来,已经有大量的研究涉及镁的压缩。然而,在一项研究中,文献搜索显示与张力有关的论文数量明显减少,而系统比较这两种模式的论文也很少。目前的研究报道了在不同的Z条件下,在挤压的商品镁合金AZ31上,在两个样品方向上进行的单轴拉伸和压缩测试中,研究了各向异性变形行为以及伴随的织构和微观组织演变。对于加载方向平行于挤出轴的试样,在高Z条件下其拉伸-压缩强度各向异性非常明显。与挤压轴成45°的载荷产生的拉伸压缩强度行为接近各向同性。在沿挤出方向的拉伸载荷过程中,挤出纹理可防止孪生并有利于棱柱形滑移(与压缩相反)。这使得在基面上的形状变化最大,并且沿c轴等于零,这导致在不同的Z条件下进行所有拉伸测试期间,单个晶粒的方向实际上保持完整。对于其他研究的样品方向,沿c轴施加了应变,这与晶格旋转有关,因此与晶体取向发生了变化。在低Z条件下(400℃/ 10〜(-4)s〜(-1))进行单轴压缩会产生理想的纹理退化,这是基于滑移系统分布更均匀,可减少各向异性和增强动态的原因所解释的。重结晶(DRX),抵消了强烈的变形纹理。在最高研究Z条件下(200℃/ 10〜(-2)s〜(-1)),拉伸试样中DRX成核的临界应变在4%至5.6%之间。

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