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On the fatigue crack growth–microstructure relationship in ultrafine-grained interstitial-free steel

机译:超细晶粒无间隙钢的疲劳裂纹扩展与组织关系

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摘要

The crack growth behavior in an ultrafine-grained (UFG) interstitial-free (IF) steel processed by equal channel angular pressing (ECAP) was investigated utilizing miniaturized compact-tension specimens with different microstructural characteristics. The current results demonstrate that both the ECAP processing route and the direction of crack growth with respect to the extrusion direction dictate the crack growth behavior in UFG IF steel. Specifically, the highest crack growth rates and the lowest threshold values were observed for the lowest grain size. Moreover, an unusual deviation from the expected direction of crack expansion was observed, where the deviation depended on the processing route and direction of crack growth. This deviation is attributed to the presence of elongated structures in the microstructure, which were mainly detectable in the UFG IF steel following a small number of pressings, and to a smaller extent in the optimized microstructures. Specifically, these elongated structures formed parallel to the material’s plastic flow during ECAP processing and moved the crack away from the expected direction of growth due to the high stress concentration zones they created along with the process-induced damages.
机译:利用具有不同显微组织特性的小型紧凑型拉伸试样,研究了等通道角向压制(ECAP)处理的超细晶粒(UFG)无间隙(IF)钢的裂纹扩展行为。目前的结果表明,ECAP加工路线和裂纹扩展相对于挤压方向的方向都决定了UFG IF钢的裂纹扩展行为。具体而言,对于最低的晶粒尺寸,观察到最高的裂纹扩展速率和最低的阈值。此外,观察到与预期的裂纹扩展方向不同寻常的偏离,该偏离取决于加工路径和裂纹扩展的方向。该偏差归因于微观结构中存在拉长结构,拉长结构主要是通过少量冲压而在UFG IF钢中可检测到的,而在优化的微观结构中则较小。具体来说,这些细长结构在ECAP处理期间平行于材料的塑性流动形成,并且由于裂纹形成时产生的高应力集中区域以及过程引起的损坏,使裂纹从预期的生长方向移开。

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