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首页> 外文期刊>International Journal of Fatigue >Application of hysteresis energy criterion in a microstructure-based model for fatigue crack initiation and evolution in austenitic stainless steel
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Application of hysteresis energy criterion in a microstructure-based model for fatigue crack initiation and evolution in austenitic stainless steel

机译:磁滞能量准则在基于微观结构的奥氏体不锈钢疲劳裂纹萌生和演化模型中的应用

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摘要

The Sistaninia-Niffenegger Fatigue (SNF) model, a mesoscale hysteresis energy-based model of fatigue crack initiation, is calibrated and validated both by experiments and numerical modeling. The simulations are able to reproduce the fatigue life curves for the AISI 316L austenitic stainless steel of different grain sizes. In addition, it's shown that the model captures the crack initiation site and the subsequent propagation through the anisotropic microstructure in a real multi-notched sample subjected to high cycle fatigue (HCF) loading. The microstructure of the polycrystal is determined by electron back scattering diffraction (EBSD), whereas the material properties of the polycrystal and the parameters of the model are obtained by inverse analysis using the Levenberg-Marquardt algorithm, based on the tensile stress-strain curves and the HCF test results, respectively. The model can be applied to different microstructures under HCF loading and evaluate crack initiation and its evolution with precision within the intrinsic scattering of HCF tests.
机译:通过实验和数值模型对Sistaninia-Niffenegger疲劳(SNF)模型(基于中尺度磁滞能量的疲劳裂纹萌生模型)进行了校准和验证。该模拟能够再现不同晶粒尺寸的AISI 316L奥氏体不锈钢的疲劳寿命曲线。此外,还表明该模型捕获了经受高循环疲劳(HCF)载荷的真实多缺口样品中的裂纹萌生部位和随后通过各向异性微观结构的传播。多晶的微观结构是通过电子反向散射衍射(EBSD)确定的,而多晶的材料特性和模型的参数是通过使用Levenberg-Marquardt算法基于拉伸应力-应变曲线和HCF测试结果分别。该模型可以应用于HCF载荷下的不同微观结构,并在HCF测试的固有散射范围内精确评估裂纹的萌生及其演化。

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