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首页> 外文期刊>Philosophical Magazine >Evolution of texture and grain boundary microstructure in two-phase (α + β) brass during recrystallization
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Evolution of texture and grain boundary microstructure in two-phase (α + β) brass during recrystallization

机译:两相(α+ +β)黄铜在再结晶过程中的纹理和晶界微观结构的演变

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The evolution of texture and microstructure during recrystallization is studied for two-phase copper alloy (Cu-40Zn) with a variation of the initial texture and microstructure (hot rolled and solution treated) as well as the mode of rolling (deformation path: uni-directional rolling and cross rolling). The results of bulk texture have been supported by micro-texture and microstructure studies carried out using electron back scatter diffraction (EBSD). The initial microstructural condition as well as the mode of rolling has been found to alter the recrystallization texture and microstructure. The uni-directionally rolled samples showed a strong Goss and BR {236}385 component while a weaker texture similar to that of rolling evolved for the cross-rolled samples in the α phase on recrystallization. The recrystallization texture of the β phase was similar to that of the rolling texture with discontinuous 101 α and {111} γ fiber with high intensity at {111}101. For a given microstructure, the cross-rolled samples showed a higher fraction of coincident site lattice Σ3 twin boundaries in the α phase. The higher fraction of Σ3 boundaries is explained on the basis of the higher propensity of growth accidents during annealing of the cross-rolled samples. The present investigation demonstrates that change in strain path, as introduced during cross-rolling, could be a viable tool for grain boundary engineering of low SFE fcc materials.
机译:研究了两相铜合金(Cu-40Zn)在再结晶过程中织构和显微组织的演变,该过程具有初始织构和显微组织(热轧和固溶处理)以及轧制方式(变形路径:单晶)的变化。定向轧制和交叉轧制)。使用电子背散射衍射(EBSD)进行的微观纹理和微观结构研究支持了整体纹理的结果。已经发现初始的微观结构条件和轧制方式会改变再结晶织构和微观结构。单向轧制的样品显示出强大的戈斯和BR {236} 385组件,而较弱的织构类似于在再结晶过程中在α相中的交叉轧制样品的轧制过程。 β相的重结晶纹理类似于具有不连续的101α和{111}β纤维的{111} 101高强度的滚动纹理。对于给定的微观结构,交叉轧制的样品在α相中显示出较高的重合部位晶格α3双晶界。基于交叉轧制样品退火期间生长事故的较高倾向,解释了更高比例的α3边界。本研究表明,在交叉轧制过程中引入的应变路径变化可能是低SFE fcc材料晶界工程的可行工具。

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