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Plastic deformation mechanisms in a severely deformed Fe-Ni-Al-C alloy with superior tensile properties

机译:具有优异拉伸性能的严重变形Fe-Ni-Al-C合金中的塑性变形机制

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摘要

Nanostructured metals have high strength while they usually exhibit limited uniform elongation. While, a yield strength of approximately 2.1 GPa and a uniform elongation of about 26% were achieved in a severely deformed Fe-24.8%Ni-6.0%Al-0.38%C alloy in the present work. The plastic deformation mechanisms for the coarse-grained (CG) sample and the cold-rolled (CR) samples of this alloy were investigated by a series of mechanical tests and microstructure characterizations before and after tensile tests. No obvious phase transformation was observed during the tensile deformation for the CG sample, and the plastic deformation was found to be mainly accommodated by deformation twins and dislocation behaviors. While significant phase transformation occurs for the CR samples due to the facts that the deformed grains by CR are insufficient to sustain the tensile deformation themselves and the flow stress for the CR samples is high enough to activate the martensite transformation. The amount of phase transformation increases with increasing thickness reduction of CR, resulting in excellent tensile ductility in the severely deformed alloy. The back stress hardening was found to play a more important role in the CR samples than in the CG sample due to the dynamically reinforced heterogeneous microstructure by phase transformation.
机译:纳米结构金属具有高强度,而它们通常显示出有限的均匀伸长率。同时,在目前的工作中,在严重变形的Fe-24.8%Ni-6.0%Al-0.38%C合金中,获得了约2.1 GPa的屈服强度和约26%的均匀伸长率。在拉伸试验之前和之后,通过一系列的机械测试和显微组织表征研究了该合金的粗晶粒(CG)样品和冷轧(CR)样品的塑性变形机理。在CG样品的拉伸变形过程中,没有观察到明显的相变,而塑性变形主要由变形孪晶和位错行为来适应。尽管由于CR变形的晶粒不足以承受自身的拉伸变形,并且CR样品的流动应力足够高以激活马氏体转变,所以CR样品发生了明显的相变。随着CR厚度的减小,相变量增加,从而在严重变形的合金中产生极好的拉伸延展性。由于通过相变动态增强了异质微观结构,因此在CR样品中发现背应力硬化比在CG样品中起更重要的作用。

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