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首页> 外文期刊>Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science >Influence of Intensive Melt Shearing on the Microstructure and Mechanical Properties of an Al-Mg Alloy with High Added Impurity Content
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Influence of Intensive Melt Shearing on the Microstructure and Mechanical Properties of an Al-Mg Alloy with High Added Impurity Content

机译:强熔剪切对高添加杂质铝镁合金组织和力学性能的影响

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We have investigated the influence of melt conditioning by intensive shearing on the mechanical behavior and microstructure of Al-Mg-Mn-Fe-Cu-Si alloy sheet produced from a small book mold ingot with high added impurity content. The melt conditioned ingot has fine grains throughout its cross section, whereas a conventionally cast ingot, without melt shearing, has coarser grains and shows a wider variation of grain size. Both needle-shaped and coarse Chinese script iron bearing intermetallic particles are found in the microstructure at the center of the conventionally processed ingot, but for the melt conditioned ingot, only fine Chinese script intermetallic particles are observed. In addition to the iron bearing intermetallics, Mg_2Si particles are also observed. The ingots were rolled to thin sheet and solution heat treated (SHT). During rolling, the iron-based intermetallics and Mg_2Si particles are broken and aligned along the rolling direction. Yield strength (YS), ultimate tensile strength (UTS), and elongation of the intensively melt sheared and processed sheet are all improved compared to the conventionally cast and processed sheet. Fractographic analysis of the tensile fracture surfaces shows that the clustered and coarse iron bearing intermetallic particles are responsible for the observed reduction in mechanical properties of the conventionally cast sheet. We have shown that by refining the initial microstructure of the ingot by intensive shear melt conditioning, it is possible to achieve improved mechanical properties at the final sheet gage of an AlMgMn alloy with a high content of impurities.
机译:我们已经研究了通过强剪切进行熔体调节对由具有高添加杂质含量的小型书模铸锭生产的Al-Mg-Mn-Fe-Cu-Si合金板的力学行为和组织的影响。经熔融调节的铸锭在其整个横截面上具有细小晶粒,而常规的铸造铸锭在没有熔融剪切的情况下具有较粗的晶粒并且显示出较大的晶粒尺寸变化。在常规加工的铸锭中心处的显微组织中均发现了针状和粗糙的含汉字铁的金属间化合物颗粒,但对于经熔融处理的铸锭,仅观察到了细的汉字金属间化合物颗粒。除了含铁金属间化合物,还观察到Mg_2Si颗粒。将铸锭轧成薄片并进行固溶热处理(SHT)。在轧制过程中,铁基金属间化合物和Mg_2Si颗粒破碎并沿轧制方向排列。与传统的流延和加工的板材相比,强化熔融剪切和加工的板材的屈服强度(YS),极限抗拉强度(UTS)和伸长率均得到改善。对拉伸断裂表面的分形分析表明,聚集和粗大的含铁金属间化合物颗粒是观察到的常规铸造板材机械性能下降的原因。我们已经表明,通过用强烈的剪切熔融调节细化铸锭的初始微观结构,可以在具有高杂质含量的AlMgMn合金的最终薄板规上实现改善的机械性能。

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