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Enhancing the High-Cycle Fatigue Property of 316 Austenitic Stainless Steels Through Introduction of Mechanical Twins by Cold-Drawing

机译:通过冷绘制通过机械双胞胎引进316奥氏体不锈钢的高周疲劳性能

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The strain-controlled fatigue tests of cold-drawn 316 austenitic stainless steels used in nuclear reactors were conducted at room temperature. The fractography of the specimens after fatigue fracture was observed by scanning electron microscope. The interaction between mechanical twins activated by prior cold drawing and dislocation structures during fatigue of cold-drawn 316 steels was investigated by transmission electron microscope. The results reveal that the high-cycle fatigue life of 316 stainless steels can be raised by prior cold drawing. The high-cycle fatigue life obviously increases with the level of prior cold drawing. The fatigue crack propagation rate of 316 stainless steels was decreased by the prior cold drawing. The complex dislocation structures, like walls, channels and cells, were generated during fatigue. The mechanical twins can segment the austenitic grains and hinder the dislocations motion between two mechanical twins. The dislocations pile up and slip along the mechanical twin boundaries. The extrusion on austenitic grain boundaries resulting from dislocations motion can be reduced by mechanical twin boundaries, leading to effectively improve deformation homogeneity and delay fatigue micro-crack initiations. Also, the high-cycle fatigue resistance of cold-drawn 316 stainless steels can be improved by the grain refinement resulting from mechanical twins. Thus, the high-cycle fatigue property of 316 steels is enhanced through the mechanical twins activated by cold drawing.
机译:在室温下进行核反应堆中使用的冷拉316奥氏体不锈钢的应变控制的疲劳试验。通过扫描电子显微镜观察疲劳骨折后试样的碎片切片。通过透射电子显微镜研究了通过先前的冷拉伸和脱位结构激活的机械双胞胎之间的相互作用。透射电子显微镜研究了冷绘316钢的疲劳。结果表明,通过先前的冷绘,可以提高316个不锈钢钢的高周疲劳寿命。高循环疲劳寿命随着先前的冷绘制的水平明显增加。通过先前的冷绘,减少了316个不锈钢的疲劳裂纹传播速率。在疲劳期间产生复杂的位错结构,如墙壁,通道和细胞。机械双胞胎可以在两个机械双胞胎之间进行奥氏体晶粒并阻碍脱位运动。脱位堆积并沿着机械双界滑动。通过机械双界可以减少由脱位运动引起的奥氏体晶界的挤出,从而有效地改善变形均匀性和延迟疲劳微裂纹引发。而且,通过机械双胞胎引起的晶粒细化可以改善冷拉316不锈钢的高循环疲劳电阻。因此,通过冷拉伸激活的机械双胞胎增强了316钢的高周疲劳性。

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