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Large recovery strain in Fe-Mn-Si-based shape memory steels obtained by engineering annealing twin boundaries

机译:通过工程退火双边界获得的Fe-Mn-Si基形状记忆钢的大恢复应变

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摘要

Shape memory alloys are a unique class of materials that can recover their original shape upon heating after a large deformation. Ti-Ni alloys with a large recovery strain are expensive, while low-cost conventional processed Fe-Mn-Si-based steels suffer from a low recovery strain (<3%). Here we show that the low recovery strain results from interactions between stress-induced martensite and a high density of annealing twin boundaries. Reducing the density of twin boundaries is thus a critical factor for obtaining a large recovery strain in these steels. By significantly suppressing the formation of twin boundaries, we attain a tensile recovery strain of 7.6% in an annealed cast polycrystalline Fe-20.2Mn-5.6Si-8.9Cr-5.0Ni steel (weight%). Further attractiveness of this material lies in its low-cost alloying components and simple synthesis-processing cycle consisting only of casting plus annealing. This enables these steels to be used at a large scale as structural materials with advanced functional properties.
机译:形状记忆合金是一类独特的材料,可以在大变形后加热后恢复其原始形状。具有大恢复应变的Ti-Ni合金是昂贵的,而低成本的常规加工的Fe-Mn-Si基钢具有低恢复应变(<3%)的缺点。在这里,我们显示出低回复应变是由于应力诱发的马氏体与高密度退火孪晶边界之间的相互作用而引起的。因此,降低孪晶边界的密度是在这些钢中获得大恢复应变的关键因素。通过显着抑制孪晶边界的形成,我们在退火铸造的多晶Fe-20.2Mn-5.6Si-8.9Cr-5.0Ni钢(重量%)中获得了7.6%的拉伸回复应变。这种材料的进一步吸引力在于其低成本的合金成分和仅由铸造和退火组成的简单合成过程。这使得这些钢可以大规模用作具有先进功能特性的结构材料。

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