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Tensile behavior of bulk nanostructured and ultrafine grained aluminum alloys

机译:体纳米结构和超细晶粒铝合金的拉伸行为

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摘要

In the present study, data on tensile behavior of bulk nanostructured aluminum alloys processed via consolidation of mechanically milled powders and severe plastic deformation are analyzed. High strength and low strain hardening were observed in bulk nanostructured and ultrafine-grained Al alloys. The ductility of aluminum alloys decreases with decreasing grain size. The high amount of intercrystalline components may have an influence on tensile properties of bulk nanostructured materials when grain sizes are less than 100 nm. The high strength in bulk nanostructured Al-Mg alloy may be attributed to contributions arising from grain size strengthening, the presence of high dislocation densities, Orowan strengthening, precipitation hardening and solid-solution hardening. The large and sudden stress drops in the stress-strain curves of cryomilled Al alloys are most probably indicative of the dislocation annihilation in the vicinity of or breakaway from the strong pinning role of dispersoids.
机译:在本研究中,分析了通过机械研磨粉末的固结和严重塑性变形处理的整体纳米结构铝合金的拉伸性能数据。在块状纳米结构和超细晶粒铝合金中观察到高强度和低应变硬化。铝合金的延展性随着晶粒尺寸的减小而降低。当晶粒尺寸小于100 nm时,大量的晶间成分可能会对整体纳米结构材料的拉伸性能产生影响。块状纳米结构Al-Mg合金的高强度可归因于晶粒尺寸增强,高位错密度的存在,Orowan增强,沉淀硬化和固溶硬化。低温铣削铝合金的应力-应变曲线中突然的大的应力下降很可能表明位错ni灭在弥散体的强钉扎作用附近或与之分离。

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  • 来源
    《Journal of Materials Science 》 |2003年第15期| 3319-3324| 共6页
  • 作者单位

    Department of Chemical Engineering and Materials Science University of California;

    Department of Chemical Engineering and Materials Science University of California;

    Department of Chemical Engineering and Materials Science University of CaliforniaUniversity of California;

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