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Design for Fe-high Mn alloy with an improved combination of strength and ductility

机译:具有增强的强度和延展性的铁-高锰合金设计

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摘要

Recently, Fe-Mn twinning-induced plasticity steels with an austenite phase have been the course of great interest due to their excellent combination of tensile strength and ductility, which carbon steels have never been able to attain. Nevertheless, twinning-induced plasticity steels also exhibit a trade-off between strength and ductility, a longstanding dilemma for physical metallurgists, when fabricated based on the two alloy design parameters of stacking fault energy and grain size. Therefore, we investigated the tensile properties of three Fe-Mn austenitic steels with similar stacking fault energy and grain size, but different carbon concentrations. Surprisingly, when carbon concentration increased, both strength and ductility significantly improved. This indicates that the addition of carbon resulted in a proportionality between strength and ductility, instead of a trade-off between those characteristics. This new design parameter, C concentration, should be considered as a design parameter to endow Fe-Mn twinning-induced plasticity steel with a better combination of strength and ductility.
机译:近来,具有奥氏体相的Fe-Mn孪晶诱发的可塑性钢由于其抗拉强度和延展性的优异结合而引起了人们的极大兴趣,而碳钢却从未达到过。尽管如此,孪生诱发的可塑性钢在堆垛层错能和晶粒度这两个合金设计参数的基础上进行制造时,也表现出强度和延展性之间的权衡,这是物理冶金学家的长期难题。因此,我们研究了三种具有类似堆垛层错能和晶粒尺寸,但碳浓度不同的铁锰奥氏体钢的拉伸性能。令人惊讶的是,当碳浓度增加时,强度和延展性均显着提高。这表明添加碳会导致强度和延展性成比例,而不是在这些特性之间进行权衡。这个新的设计参数C浓度应被视为赋予Fe-Mn孪晶诱导塑性钢更好的强度和延展性的设计参数。

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