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首页> 外文期刊>International Journal of Fatigue >Microscopic and nanoscopic study on subsurface damage and fatigue crack initiation during very high cycle fatigue
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Microscopic and nanoscopic study on subsurface damage and fatigue crack initiation during very high cycle fatigue

机译:极高循环疲劳过程中地下损伤和疲劳裂纹萌生的微观和纳米研究

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摘要

"Fish eye" is a typical phenomenon of fatigue crack initiation at a subsurface defect such as inclusion during very high cycle fatigue. The formation of a fine grained area and micro-debonding is believed to cause fatigue crack initiation. This paper provides a basic study on the formation of the fine grained area in a martensitic stainless steel during very high cycle fatigue using scanning electron microscopy, SEM, focused ion beam technique, FIB, electron backscatter diffraction, EBSD, and electron channeling contrast imaging, ECCI. The results show that the formation of a fine grained zone is a local behavior. The fine grained zone is very near the fatigue crack initiation origin. In the transversal direction (cross section), the depth of the fine grained zone is only few micrometers. In the longitudinal direction (crack propagation direction), the depth of the fine grain zone is about one micrometer. ECCI analysis shows that in the fine grained area with high retained strain, high plastic deformation can be found. Dislocation slip bands can be observed. They interact with grain boundaries and cause the formation of damage due to impingement cracking. The results indicate that occurrence of plastic deformation in metallic material during very high cycle fatigue is very localized, mainly near the front of the crack tip or a defect.
机译:“鱼眼”是在地下缺陷(例如在非常高的周期疲劳期间出现的夹杂物)处疲劳裂纹萌生的典型现象。据信形成细晶粒区域和微脱粘会引起疲劳裂纹萌生。本文使用扫描电子显微镜,SEM,聚焦离子束技术,FIB,电子背散射衍射,EBSD和电子通道对比度成像技术,对马氏体不锈钢在极高循环疲劳过程中细晶粒区域的形成进行了基础研究, ECCI。结果表明,细颗粒区的形成是局部行为。细颗粒区非常靠近疲劳裂纹萌生起点。在横向方向(横截面)上,细颗粒区的深度只有几微米。在纵向方向(裂纹扩展方向)上,细晶粒区域的深度约为一微米。 ECCI分析表明,在具有高保留应变的细晶粒区域中,可以发现高塑性变形。可以观察到错位滑带。它们与晶界相互作用,并由于冲击裂纹而引起损伤的形成。结果表明,在非常高的循环疲劳期间,金属材料中塑性变形的发生非常局部化,主要在裂纹尖端或缺陷附近。

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