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首页> 外文期刊>International Journal of Fatigue >Strain-based modeling of fatigue crack growth - An experimental approach for stainless steel
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Strain-based modeling of fatigue crack growth - An experimental approach for stainless steel

机译:基于应变的疲劳裂纹扩展建模-不锈钢的实验方法

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This study aimed at correlation of the crack growth rates to the strain range and assessment of the fatigue life by crack growth prediction. First, the fatigue crack growth rate was investigated using Type 316 stainless steel specimens. Cylindrical specimens were subjected to a fully reversed load in order to apply cyclic plastic strain. The crack growth during the tests was monitored by taking replicas. Then, the crack growth rates were correlated to a parameter derived using the strain range. It was shown that, under the same stress intensity factor range, crack growth rates obtained by the fully reversed fatigue tests were more than ten times those obtained using compact tension specimens under the small scale yielding condition, and the strain intensity factor derived assuming the linear stress-strain relation (strain hardening exponent of n = 1) correlated well with the growth rates obtained under various conditions. That the strain intensity factor could represent the fatigue crack growth driving force was reasonably explained by the strain field at the crack tip as examined by finite element analyses. Finally, the relationship between the crack growth rates and the fatigue life was discussed. It was found that the fatigue life could be predicted by integrating the crack growth rates represented by the strain intensity factor without considering the incubation period before the crack initiation. The emergence of a crack with a depth of 0.1 mm indicated the remaining fatigue life was less than 0.3N/ regardless of the applied strain range.
机译:这项研究旨在裂纹扩展速率与应变范围的相关性,并通过裂纹扩展预测评估疲劳寿命。首先,使用316型不锈钢试样研究了疲劳裂纹扩展速率。圆柱试样承受完全反向的载荷,以施加循环塑性应变。测试过程中的裂纹扩展通过复制进行监控。然后,将裂纹扩展速率与使用应变范围导出的参数相关联。结果表明,在相同的应力强度因子范围内,通过完全反向疲劳试验获得的裂纹扩展速率是在小规模屈服条件下使用紧凑型拉伸试样获得的裂纹扩展速率的十倍以上,并且应变强度因子的推定是线性的。应力-应变关系(应变硬化指数为n = 1)与在各种条件下获得的生长速率密切相关。应变强度因子可以代表疲劳裂纹扩展驱动力,这是通过有限元分析所检验的裂纹尖端处的应变场来合理解释的。最后,讨论了裂纹扩展速率与疲劳寿命之间的关系。已经发现,可以通过综合以应变强度因子表示的裂纹扩展速率来预测疲劳寿命,而无需考虑裂纹萌生之前的潜伏期。深度为0.1 mm的裂纹的出现表明,不管施加的应变范围如何,其剩余疲劳寿命均小于0.3N /。

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