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Microstructural damage evolution and arrest in binary Fe-high-Mn alloys with different deformation temperatures

机译:不同变形温度的二元Fe-High-Mn合金中的微观结构损伤和捕获

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We investigated the damage evolution behaviors of binary Fe- 28- 40Mn alloys ( mass%) from 93 to 393 K by tensile testing. The underlying mechanisms of the microstructure- dependent damage evolution behavior were uncovered by damage quantification coupled with in situ strain mapping and postmortem microstructure characterization. The damage growth behaviors could be classified into three types. In type I, the Fe- 28Mn alloy at 93 K showed premature fracture associated with ductile damage initiation and subsequent quasi- cleavage damage growth associated with the e- martensitic transformation. In type II, the Fe- 28Mn alloy at 293 K and the Fe- 32Mn alloy at 93 K showed delayed damage growth but did not stop growing. In type III, when the stacking fault energywas 19 mJ/ m2, the damage was strongly arrested until final ductile failure.
机译:我们通过拉伸试验调查了二元Fe-28-40mn合金(质量%)的损伤演化行为(质量%)。 通过与原位应变映射和后模拟微结构表征耦合的损伤定量来揭示微观结构依赖性损伤演化行为的潜在机制。 损害生长行为可以分为三种类型。 在I型中,93K的Fe-28Mn合金显示出与延性损伤引发和随后与e-马氏体转化相关的拟拟损伤生长相关的过早骨折。 在II型中,在93k的293k和Fe-32mN合金处的Fe-28mN合金显示出延迟损伤的损伤,但没有停止生长。 在III型,当堆叠故障能量和GT时; 19 MJ / M2,损伤强烈捕获,直至最终的韧性衰竭。

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