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Tensile Behavior and Deformation Mechanism of Fe-Mn-Al-C Low Density Steel with High Strength and High Plasticity

机译:高强度高塑性Fe-Mn-Al-C低密度钢的拉伸行为和变形机理

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Tensile behavior and plastic deformation mechanisms of Fe-22.8Mn-8.48Al-0.86C low-density steel were studied in this thesis. After solution treatment 1100 °C for 1 h; the steels obtained an excellent combination in mechanical properties; with tensile strength of 757.4 MPa and total elongation of 68%; which were attributed to the existence of annealing twins in austenite. The present steel presented a multiple stage strain hardening behavior which was associated with the changes of such dislocation substructures. With the increase of strain, the gradual transition from tangled dislocations to dense dislocation walls and microbands was found in (the transmission electron microscopy) TEM microstructures. Due to the influence of the evolution of the microstructure during the deformation process, the work hardening behavior of the experimental steel shows three distinct stages.
机译:本文研究了Fe-22.8Mn-8.48Al-0.86C低密度钢的拉伸行为和塑性变形机理。 1100℃固溶处理1h后;这些钢在机械性能方面获得了极好的结合;抗拉强度为757.4 MPa,总伸长率为68%;这归因于奥氏体中存在退火孪晶。本钢表现出多阶段应变硬化行为,这与这种位错亚结构的变化有关。随着应变的增加,在(透射电子显微镜)TEM显微结构中发现了从纠缠位错到致密位错壁和微带的逐渐过渡。由于在变形过程中微观组织的演变的影响,实验钢的工作硬化行为表现出三个不同的阶段。

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