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Strengthening Mechanisms of Ni-Co-Cr Alloys via Nanotwins and Nanophases

机译:通过纳米曲线和纳米酶加强Ni-Co-Cr合金的机理

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The ultra-high strength of multiphase (MP) alloys for fastener applications is endowed by cold deformation, which induces deformation twinning or phase transformation in the materials. In the present work, MP159 alloy as well as NiCoCr medium-entropy alloy are investigated to assess the effectiveness of a torsional pre-straining as well as surface mechanical grinding treatments to further improve their strength. For the pre-torsion route, microstructural analysis shows that with the activation of different twinning systems and stacking faults, the sequential torsion and tension tests lead to the observed hierarchical microstructure, which gives rise to the significant increase in the yield strength in the investigated alloys while retaining a good ductility. Further studies reveal that aging treatment of the pre-torsion bars provides additional strengthening to MP159 alloys, with the synergistic strengthening of nanotwins and nanopre-cipitates. After the surface mechanical grinding treatment of NiCoCr alloys, a nanocrystalline structure is formed in a region extending about 150 μm from the edge. Considering the high applied strains, a high density of deformation twins is expected in the nanocrystalline region. Micropillar compression of single crystal and nanocrystalline NiCoCr alloy shows that with the refinement of grain size from 200 μm to 40 nm, the yield strength could increase from 900 to 2500 MPa. This reveals that the refinement of grain sizes can significantly increase the yield strength of NiCoCr alloys with a low stacking fault energy.
机译:用于紧固件应用的多相(MP)合金的超高强度由冷变形赋予,诱导材料中的变形孪氮或相变。在本作工作中,研究了MP159合金以及尼克中熵合金,以评估扭转预拉伸以及表面机械研磨处理的有效性,以进一步提高它们的强度。对于预扭转途径,微结构分析表明,随着不同的孪晶系统和堆叠故障的激活,序贯扭转和张力试验导致观察到的分层微观结构,这导致研究的合金中的产量强度显着增加在保持良好的延性的同时。进一步的研究表明,预扭杆的老化处理提供了额外的强化MP159合金,具有纳米曲线和纳米醇类的协同强化。在镍合金的表面机械研磨处理之后,在从边缘延伸约150μm的区域中形成纳米晶结构。考虑到高施加的菌株,在纳米晶区域中预期高密度的变形双胞胎。单晶和纳米晶体镍合金的微细胞压缩表明,随着晶粒尺寸的细化为200μm至40nm,屈服强度可从900〜2500MPa增加。这表明晶粒尺寸的细化可以显着提高尼亚孔合金的低堆叠故障能量的屈服强度。

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