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Microstructure evolution and strengthening mechanisms of Fe-23Mn-0.3C-1.5Al TWIP steel during cold rolling

机译:Fe-23Mn-0.3C-1.5Al TWIP钢冷轧过程中的组织演变及强化机理

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摘要

The effect of cold rolling on the microstructure evolution and mechanical properties of Fe-23Mn-0.3C-1.5Al twinning-induced plasticity (TWIP) steel was studied. The extensive mechanical twinning subdivides the initial grains into nanoscale twin lamellas. In addition, the formation of deformation micro bands at ε>40% induces the formation of nanostructured bands of localized shear. It is demonstrated that the mechanical twinning is notably important for dislocation storage within the matrix, as the twin boundaries act as equally effective obstacles to dislocation glide as conventional high-angle grain boundaries. However, the contribution of the grain size strengthening to the overall yield stress (YS) is much smaller than that of the deformation strengthening, which plays a major role in the superior work-hardening behavior of TWIP steels. A very high dislocation density of ~2 × 10~(15) m~(-2) is achieved after plastic deformation with moderate strains. The superposition of deformation strengthening and grain boundary strengthening leads to an increase in the YS from 235 MPa in the initial state to 1400 MPa after 80% rolling.
机译:研究了冷轧对Fe-23Mn-0.3C-1.5Al孪晶诱导塑性(TWIP)钢组织演变和力学性能的影响。广泛的机械孪晶将初始晶粒细分为纳米级孪晶薄片。另外,ε> 40%时变形微带的形成会引起局部剪切的纳米结构带的形成。结果表明,机械孪晶对于基体内的位错存储特别重要,因为孪晶边界与常规的高角度晶界一样,是位错滑动的同等有效障碍。但是,晶粒尺寸强化对总屈服应力(YS)的贡献远小于变形强化的贡献,这在TWIP钢优异的加工硬化性能中起着重要作用。经过适度应变的塑性变形后,获得了很高的位错密度〜2×10〜(15)m〜(-2)。变形强化和晶界强化的叠加导致YS从初始状态的235 MPa增加到轧制80%后的1400 MPa。

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