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Texture evolution, deformation mechanism and mechanical properties of the hot rolled Mg-Gd-Y-Zn-Zr alloy containing LPSO phase

机译:含LPSO相的热轧Mg-Gd-Y-Zn-Zr合金的织构演变,变形机理和力学性能

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The texture evolution, crystal orientation-dependent deformation mechanism and mechanical properties of the Mg-5.5Gd-4.4Y-1.1Zn-0.5Zr (wt%) alloy sheet with bimodal grain structure during hot rolling were investigated in this study. The pre-rolled sheet possesses the texture with c-axis randomly distributed in rolling-transverse plane. During the hot rolling deformation, the initial texture is gradually changed to an uncommon texture with c-axis continuously distributed between transverse direction (TD) and normal direction (ND) of the rolled sheet. The formation of the texture is related to the orientation-dependent deformation mechanism of coarse grains. For the coarse grains with c-axis close to rolling direction (RD), {10-12} twinning was identified to be the dominated deformation mechanism. With the activation of twinning, the c-axis of the matrix is reoriented towards ND. For the coarse grains with c-axis near TD, prism a slip and kink deformation were figured out as the dominated deformation modes. In early stage of the hot rolling deformation, the c-axis of the grains remains in TD with the activation of prism a slip. Afterwards, kink deformation activates and the c-axis of the grains is rotated away from TD towards ND with different degrees. In addition, the mechanical properties of rolled sheets were examined and the results demonstrate that yield strength and tensile strength are gradually improved by rolling deformation. Nevertheless, the improvement of yield strength in RD is much greater than that in TD and a serious yield strength anisotropy is shown in the rolled sheet. The strong yield strength anisotropy derives from the variation of texture strengthening in the RD and TD due to the formation the texture with c-axis continuously distributed between TD and ND.
机译:研究了具有双峰晶粒结构的Mg-5.5Gd-4.4Y-1.1Zn-0.5Zr(wt%)合金板在热轧过程中的织构演变,晶体取向相关的变形机理和力学性能。预轧薄板具有c轴随机分布在轧制横向平面中的纹理。在热轧变形过程中,初始织构逐渐变为不常见的织构,其c轴连续分布在轧制板的横向(TD)和法线方向(ND)之间。织构的形成与粗晶粒取向相关的变形机制有关。对于c轴接近轧制方向(RD)的粗晶粒,{10-12}孪晶被认为是主要的变形机制。随着孪晶的激活,矩阵的c轴朝向ND重新定向。对于c轴接近TD的粗晶粒,将棱镜滑移和扭折变形作为主要的变形模式。在热轧变形的早期阶段,随着棱柱滑动的激活,晶粒的c轴保持在TD中。然后,扭结变形被激活,晶粒的c轴以不同的角度从TD向ND旋转。另外,检查了轧制板的机械性能,结果表明通过轧制变形逐渐提高了屈服强度和拉伸强度。然而,RD中的屈服强度的改善远大于TD中的屈服强度,并且在轧制板中显示出严重的屈服强度各向异性。强屈服强度各向异性源于RD和TD中纹理增强的变化,这是由于c轴连续分布在TD和ND之间而形成的。

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