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Low cycle fatigue life improvement of AISI 304 by initial and intermittent wire brush hammering

机译:通过初始和间歇钢丝刷锤击改善AISI 304的低循环疲劳寿命

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摘要

The effects of hammering by wire brush as a method of improving low cycle fatigue life of highly ductile austenitic stainless steel AISI 304 have been investigated through an experimental study combining imposed strain fatigue tests and assessment of surface characteristic changes under cyclic loading by SEM examinations and XRD analysis. It has been shown that the fatigue life of wire brush hammered surface was increased by 307% at an imposed strain rate of 0.2% and only 17% at an imposed strain rate of 0.5%, comparatively to the turned surface. This increase in fatigue life is explained in terms of fatigue damage that is related to crack networks characteristics and stability which are generated during fatigue on both turned and wire brush hammered surfaces. The improvement of brushed surface is attributed to the role of the surface topography, the near surface stabilized compressive residual stresses and superfi-cial cold work hardening on the fatigue crack network nucleation and growth. It is found that wire brush hammering produces a surface texture that favors, under cyclic loading, nucleation of randomly dispersed short cracks of the order of 40 lm in length stabilized by the compressive residual stress field that reached a value of r0 = 749 MPa. In contrast, turned surface showed much longer unstable cracks of the order of 200 lm in length nucleated in the machining groves with high tendency to propagate under the effect of tensile residual stress field that reached value of r0 = 476 MPa. This improvement is limited to strain rates lower than 0.5%. At higher strain rates, a cyclic plastic deformation induced martensitic phase alters furthermore the fatigue behavior by producing high cyclic strengthening of the bulk mate-rial. This phenomenon lead to a reduction in strain imposed fatigue life. It has also been established that wire brush hammering can be used as an onsite surface treatment to improve the residual fatigue life of components subjected to cyclic loading. The efficiency of this treatment is demonstrated if it is performed at a fraction of service lifetime Ni/Nr lower than 0.5.
机译:通过结合施加的疲劳试验和通过SEM检查和XRD评估循环载荷下表面特性变化的实验研究,研究了钢丝刷锤击作为改善高延性奥氏体不锈钢AISI 304的低循环疲劳寿命的方法的效果。分析。已经表明,相对于车削表面,钢丝刷锤击表面的疲劳寿命在0.2%的施加应变率下增加了307%,而在0.5%的施加应变率下仅增加了17%。疲劳寿命的增加是根据疲劳损伤来解释的,疲劳损伤与裂纹网络特征和稳定性有关,裂纹网络特征和稳定性是在疲劳期间在车削和钢丝刷锤击表面上产生的。拉丝表面的改善归因于表面形貌的作用,近表面稳定的压缩残余应力和疲劳裂纹网络成核和生长的表面冷作硬化。我们发现,钢丝刷锤击产生的表面纹理在循环载荷下有利于长度为40 lm的随机分散的短裂纹的成核,该裂纹由压缩残余应力场稳定,达到r0 = 749 MPa。相反,车削表面在加工槽中有更长的约200 lm长的不稳定裂纹成核,并在达到r0 = 476 MPa的拉伸残余应力场的作用下很容易传播。这种改进仅限于应变率低于0.5%。在较高的应变速率下,循环塑性变形引起的马氏体相还通过产生块状材料的高循环强化而进一步改变了疲劳性能。这种现象导致施加于疲劳的应变降低。还已经确定,钢丝刷锤击可以用作现场表面处理,以改善经受循环载荷的部件的剩余疲劳寿命。如果Ni / Nr的使用寿命低于0.5,则表明该处理的效率。

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