间歇性超应力引起疲劳裂纹尖端附近位错结构的变化

K. Katagiri, R. Koterazawa, T. Yamada, T. Tsuboi
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引用次数: 7

摘要

采用归一化状态和拉伸至10%应变状态的铁试样,研究了间歇性超应力对疲劳裂纹扩展的影响。在大量低于阈值应力强度的欠应力循环期间,间歇性地施加几次完全反向的超应力循环会显著加速裂纹扩展。在超高压电镜下观察疲劳裂纹尖端附近的位错组织,发现在欠应力时出现了明显的恢复,在过度应力时恢复区域内形成了径向带状结构。这些由应力变化引起的结构变化被认为是材料中裂纹扩展加速的原因。前人报道的间歇性超应力作用下裂纹扩展的加速特性:(1)随着欠应力循环次数的增加,加速比R ac增大,裂纹扩展速度随应力循环次数的增加而增大。
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Changes in dislocation structures adjacent to fatigue crack tips induced by intermittent overstressing
Abstract A study was made on the effects of intermittent overstressing on fatigue crack propagation using Fe specimens in as-normalized and as-stretched to 10% strain conditions. A few cycles of fully reversed overstress applied intermittently during very large numbers of cycles of understress below the threshold stress intensity caused significant acceleration of crack propagation. Ultrahigh voltage electron microscopic observation of the dislocation structures adjacent to fatigue crack tips revealed the occurrence of remarkable recovery during understressing and the formation of a radial band structure within the recovered region on overstressing. These structure changes induced by varying the stress are thought to be responsible for the acceleration of crack propagation in the material. The previously reported characteristics of acceleration of crack propagation under intermittent overstressing: (i) the increase of acceleration ratio R ac as the number of cycles of understress n 1 increases, and the sa...
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