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The effects of multiple overloads and absorbed hydrogen on the fatigue strength of notched steel specimens

机译:多次超载和吸收氢对缺口钢试样疲劳强度的影响

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摘要

It is well known that earthquakes can damage structures and machinery. After an earthquake, those components, which have been obviously damaged are scrapped and replaced, and most of the components which have not been obviously damaged will continue to be used even after earthquakes. However, as will be shown, the earthquake may have severely impaired the fatigue strength of such components by introducing unfavourable residual stresses and short cracks at stress raisers. In addition, if such components should contain hydrogen, an increasingly possible scenario for the hydrogen economy in the future, then it is shown that the loss of fatigue strength can be even greater. This paper explores the extent of fatigue degradation due to overloads and to absorbed hydrogen. It was shown that generation of small crack and tensile residual stress imposed by overloads caused substantial decrease of residual fatigue strength compared with that in the initial state. It was also shown that hydrogen enhanced more reduction. Hydrogen enhanced reduction in two ways. The crack generated by overloads grew deeper in hydrogen charged material. In addition to this, the reduction of ΔK_(th) also occurred in hydrogen charged material. These two factors worked together to reduce the residual fatigue strength after multiple overloads.
机译:众所周知,地震会损坏建筑物和机械。地震后,那些明显受损的组件将被报废和更换,即使地震后,大部分尚未明显受损的组件也将继续使用。但是,如将显示的那样,地震可能会通过在应力产生器处引入不利的残余应力和短裂纹而严重损害此类组件的疲劳强度。另外,如果这些成分应包含氢,那么将来氢经济的可能性越来越大,那么表明疲劳强度的损失会更大。本文探讨了由于过载和吸收氢导致的疲劳退化程度。结果表明,与初始状态相比,过载引起的小裂纹和拉伸残余应力的产生导致残余疲劳强度大大降低。还表明氢增强了更多的还原。氢以两种方式增强还原作用。过载产生的裂纹在带氢的材料中越来越深。除此之外,在带氢材料中还发生了ΔK_(th)的降低。这两个因素共同作用,以减少多次过载后的残余疲劳强度。

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