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Mechanical Properties and Microstructure Evolution During Deformation of Fe-Mn-C TWIP Steel

机译:Fe-Mn-C TWIP钢变形过程中的力学性能和组织演变

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The mechanical and deformation microstructure properties of the Fe-Mn-C TWIP steel was investigated by means of tensile experiment, in situ scanning electron microscope (SEM) and transmission electron microscope (TEM).The results showed that the sample has excellent mechanical with tensile strength of the steel is about 114-OMPa and the yield strength is higher than 480 MPa, while the elongation is above 57%, the true stress-strain curve from tension tests exhibited repeated serrations and its strain-hardening rate is constantly changing. It is found that there were different deformation mechanisms at different deformation stages result in the unique true stress-strain curve. Dislocation slip dominated the initial deformation and with the accumulation of deformation stress concentration reached the twin shear stress resulting in twin shear, which lead to TWIP effect. As the strain capacity increased continually, the parallel twins can no longer rotate and shear deformation occurred, which lead to the forming of shear bands. The intercoordination of slip deformation, twin deformation, and shear deformation mechanism make the TWIP steel show high strength and high plasticity.
机译:通过拉伸实验,原位扫描电子显微镜(SEM)和透射电子显微镜(TEM)研究了Fe-Mn-C TWIP钢的力学性能和变形组织性能,结果表明样品具有优异的力学性能和拉伸性能。钢的强度约为114-OMPa,屈服强度高于480 MPa,而伸长率高于57%,拉伸试验的真实应力-应变曲线呈现出锯齿状,其应变硬化率不断变化。结果发现,在不同的变形阶段存在不同的变形机理,形成了唯一的真实应力-应变曲线。位错滑移主导了初始变形,随着变形的积累,应力集中达到了双剪切应力,导致了双剪切,从而导致了TWIP效应。随着应变能力的不断提高,平行孪晶不再能旋转并发生剪切变形,从而导致剪切带的形成。滑移变形,孪生变形和剪切变形机制的相互配合使TWIP钢具有高强度和高塑性。

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