论文标题

金属间粒子异质性控制在高强度纳米结构的AL合金中的剪切定位

Intermetallic particle heterogeneity controls shear localization in high-strength nanostructured Al alloys

论文作者

Lei, Tianjiao, Hessong, Esther C., Shin, Jungho, Gianola, Daniel S., Rupert, Timothy J.

论文摘要

通过原位的微骨压缩测试研究了两种纳米晶体AL合金Al-Mg-Y和Al-Fe-Y的机械行为。两种合金都通过分层微观结构加强,包括晶界隔离,纳米厚度无定形肤色,碳化物纳米棒沉淀物,尺寸为几纳米,以及金属尺度的金属尺度颗粒。 Al-Mg-Y系统的最大屈服强度为950 MPa,超过Al-FE-Y系统(680 MPa)的最大屈服强度,这主要是由于更多碳化物纳米棒和更多的无定形肤色的组合。两种合金表现出的屈服强度都比商业AL合金高得多,因此具有巨大的结构应用潜力。然而,观察到一些微柱标本通过剪切带来塑料软化。验尸调查表明,少数微米长的无金属间变形途径是该故障的原因。进一步的表征显示了剪切带内的显着晶粒生长。浓缩的谷物彼此保持相同的方向,指出了塑料流的晶界机制,特别是晶粒旋转和/或晶界迁移。金属间颗粒的存在使矩阵和金属间晶粒都很难由于不同的晶格参数和滑动系统而旋转到相同的方向。因此,我们能够得出结论,平均间距的金属间颗粒的均匀分布小于剪切定位的渗透长度可以有效防止剪切带的成熟,从而为高强度纳米晶体的高强度和高强度和稳定塑料流提供了高强度纳米晶体质合的设计策略。

The mechanical behavior of two nanocrystalline Al alloys, Al-Mg-Y and Al-Fe-Y, is investigated with in-situ micropillar compression testing. Both alloys were strengthened by a hierarchical microstructure including grain boundary segregation, nanometer-thick amorphous complexions, carbide nanorod precipitates with sizes of a few nanometers, and submicron-scale intermetallic particles. The maximum yield strength of the Al-Mg-Y system is measured to be 950 MPa, exceeding that of the Al-Fe-Y system (680 MPa), primarily due to a combination of more carbide nanorods and more amorphous complexions. Both alloys exhibited yield strengths much higher than those of commercial Al alloys, and therefore have great potential for structural applications. However, some micropillar specimens were observed to plastically soften through shear banding. Post-mortem investigation revealed that intermetallic-free deformation pathways of a few micrometers in length were responsible for this failure. Further characterization showed significant grain growth within the shear band. The coarsened grains maintained the same orientation with each other, pointing to grain boundary mechanisms for plastic flow, specifically grain rotation and/or grain boundary migration. The presence of intermetallic particles makes it difficult for both matrix and intermetallic grains to rotate into the same orientation due to the different lattice parameters and slip systems. Therefore, we are able to conclude that a uniform distribution of intermetallic particles with an average spacing less than the percolation length of shear localization can effectively prevent the maturation of shear bands, offering a design strategy for high-strength nanocrystalline Al alloys with both high strength and stable plastic flow.

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