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Strengthening mechanisms in an ultrafine-grained Al-Zn-Mg-Cu alloy processed by high pressure torsion at different temperatures

机译:不同温度下高压扭力加工的超细晶粒Al-Zn-Mg-Cu合金的强化机制

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摘要

The microstructures of an Al-Zn-Mg-Cu alloy processed by high pressure torsion at room temperature and 200 degrees C were characterized by transmission Kikuchi diffraction and atom probe tomography. Hardening effects of different microstructural features including grain boundaries, dislocations and solute nanostructures were quantitatively calculated using existing models. Compared to the samples processed at room temperature, the samples deformed at 200 degrees C were of relative larger grain sizes, a lower dislocation density and more significant phase decomposition. Thus, the primary hardening effects, i.e. grain boundary hardening, dislocation hardening and cluster hardening subside at the elevated deformation temperature. Nevertheless, significant segregation of Mg and Cu formed at grain boundaries during deformation at 200 degrees C, which provides a remarkable hardening effect. The results revealed the importance of grain boundary chemistry on the mechanical strength of the ultrafine-grained materials.
机译:通过透射菊池衍射和原子探针层析成像技术表征了在室温和200℃下高压扭转处理的Al-Zn-Mg-Cu合金的显微组织。使用现有模型定量计算了不同微结构特征(包括晶界,位错和溶质纳米结构)的硬化效应。与在室温下处理的样品相比,在200摄氏度下变形的样品具有相对较大的晶粒尺寸,较低的位错密度和更明显的相分解。因此,主要的硬化作用,即晶界硬化,位错硬化和簇硬化在升高的变形温度下消退。然而,在200摄氏度变形期间,在晶界形成的Mg和Cu明显偏析,这提供了显着的硬化效果。结果揭示了晶界化学对超细颗粒材料的机械强度的重要性。

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