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Direct observation of dislocation plasticity in high-Mn lightweight steel by in-situ TEM

机译:原位TEM直接观察高锰轻钢中位错塑性

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摘要

To gain the fundamental understanding of deformation mechanisms in an aluminum-containing austenitic high-Mn steel (Fe-32Mn-8.9Al-0.78 C (wt.%)), in-situ straining transmission electron microscopy (TEM) analysis is conducted. The in-situ observation during the deformation demonstrates that the plastic deformation is accommodated by the pronounced planar dislocation gliding followed by the formation of slip bands (SBs) and highly dense dislocation walls (HDDWs). Experimental evidences of the glide plane softening can be obtained from the interaction between the gliding perfect dislocations and the L’12 ordered precipitates in the austenite matrix. Furthermore, the observation of the localized cross-slip of dislocations at the slip band intersections enables to understand why slip bands are extensively developed without mutual obstructions between the slip bands. The enhanced strain hardening rate of the aluminum-containing austenitic high-Mn steels can be attributed to the pronounced planar dislocation glides followed by formation of extensive slip band which prevent premature failure by suppressing strain localization.
机译:为了基本了解含铝奥氏体高锰钢(Fe-32Mn-8.9Al-0.78 C(重量%))的变形机理,进行了原位应变透射电子显微镜(TEM)分析。变形过程中的原位观察表明,塑性变形通过明显的平面位错滑动来适应,随后形成滑移带(SB)和高密度位错壁(HDDW)。滑行平面位错与奥氏体基体中L’12有序析出物之间的相互作用可以得到滑行平面软化的实验证据。此外,通过观察滑移带交点处的局部错位交叉滑移,可以理解为什么滑移带在没有滑移带相互干扰的情况下得到了广泛发展。含铝奥氏体高锰钢的应变硬化速率提高,可归因于明显的平面位错滑移,随后形成宽的滑移带,通过抑制应变局部化来防止过早失效。

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