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首页> 外文期刊>International Journal of Fatigue >Polycrystal modelling of fatigue: Pre-hardening and surface roughness effects on damage initiation for 304L stainless steel
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Polycrystal modelling of fatigue: Pre-hardening and surface roughness effects on damage initiation for 304L stainless steel

机译:疲劳的多晶建模:预硬化和表面粗糙度对304L不锈钢造成损伤的影响

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摘要

The 304L stainless steel is a major component of residual heat removal circuits of pressurized water reactors (PWRs). The main purpose of this study is to understand the risk of thermal fatigue damage resulting from the machining of the 304L steel pipes inner surface (pre-hardening gradient, residual stresses and scratches), at the scale of the microstructure. This work is based on previous results obtained for pipe specimens thanks to a macroscopic elasto-visco-plastic model. Applied to the pipe specimens, this modelling showed that a thermal loading with temperature gradient, induced a cyclic non-linear biaxial loading at the inner surface of the pipe. In this paper, a polycrystal plasticity model, implemented in a Finite Element (FE) code, is adapted to cyclic loading. An elementary volume (3D aggregate), representing the inner surface and sub-surface of the 304L steel tube, is built from successive polishings and orientation mappings thanks to an Electron Back Scattering Diffraction method. At the grain scale, the polycrystal model is used as a "numerical microscope" to compute the local mechanical fields. Different fatigue criteria are tested to determine their sensitivity to surface properties (roughness, residual stress and pre-hardening) and to the microstructure of the material (crystallographic orientation and grain size). Pre-hardening leads to a lower and more homogeneous distribution of local strain amplitudes in the aggregate, but slightly higher stresses when compared to initial material without hardening. By contrast, surface roughness leads to large localized strain and stress fields in grains located at the bottom of scratches. To determine the surface micro-structural "hot spots" features and to test the sensitivity of different surface conditions, three different fatigue criteria (Manson-Coffin, Fatemi-Socie and Dissipated Energy criteria) have been computed. We point out that the pre-hardening may have a complex effect on fatigue resistance, since it reduces local plastic strain amplitudes, but increases local stresses. Moreover, the pre-hardening has a positive effect on fatigue since it delays damage initiation. By contrast, the surface roughness leads to a negative effect. However, we have shown that the three different fatigue criteria do not deliver similar quantitative predictions. Relevant criteria for high cycle fatigue, such as stress based criteria, are not considered in this paper, since the thermal loading used for computation is large enough to reduce cyclic plastic strain straining within all grains of 304L pipe inner surface for midlife of experiments.
机译:304L不锈钢是压水堆(PWR)余热排除回路的主要组成部分。这项研究的主要目的是了解在微观结构范围内对304L钢管内表面进行机械加工(预硬化梯度,残余应力和划痕)而导致的热疲劳损坏风险。这项工作是基于宏观弹塑性-粘塑性模型而获得的管道试样的先前结果。应用于管道样本后,该模型表明,具有温度梯度的热负荷在管道内表面引起了周期性的非线性双轴负荷。在本文中,以有限元(FE)代码实现的多晶可塑性模型适用于循环载荷。借助电子背向散射衍射方法,通过连续的抛光和方向映射,构建了代表304L钢管内表面和子表面的基本体积(3D聚合)。在晶粒度上,将多晶模型用作“数值显微镜”以计算局部机械场。测试了不同的疲劳标准,以确定它们对表面性能(粗糙度,残余应力和预硬化)和材料微观结构(晶体学取向和晶粒尺寸)的敏感性。预硬化导致骨料中局部应变幅度的分布更低且更均匀,但是与未硬化的初始材料相比,应力略高。相反,表面粗糙度导致位于划痕底部的晶粒中较大的局部应变和应力场。为了确定表面微结构的“热点”特征并测试不同表面条件的敏感性,已计算出三种不同的疲劳标准(Manson-Coffin,Fatemi-Socie和耗散能量标准)。我们指出,预硬化可能会对疲劳强度产生复杂的影响,因为它会降低局部塑性应变幅度,但会增加局部应力。此外,预硬化对疲劳有积极作用,因为它会延迟损伤的产生。相反,表面粗糙度导致负面影响。但是,我们已经表明,三种不同的疲劳标准不能提供相似的定量预测。由于用于计算的热负荷足够大,可以减少304L管道内表面所有晶粒内的循环塑性应变应变,因此在实验的中年期,本文不考虑有关高周疲劳的相关准则,例如基于应力的准则。

著录项

  • 来源
    《International Journal of Fatigue》 |2012年第2012期|p.48-60|共13页
  • 作者单位

    Laboratoire MSSMat, UMR 8579 CNRS, Ecole Centrak Paris, Grande vote des Vignes, 92295 Chatenay-Malabry Cedex, France,Dipartement MMC, EDF R&D, Site des Renardieres, Route de Sens Ecuelles, 77250 Moret-sur-Loing, France;

    Dipartement MMC, EDF R&D, Site des Renardieres, Route de Sens Ecuelles, 77250 Moret-sur-Loing, France;

    Laboratoire MSSMat, UMR 8579 CNRS, Ecole Centrak Paris, Grande vote des Vignes, 92295 Chatenay-Malabry Cedex, France;

    Dipartement MMC, EDF R&D, Site des Renardieres, Route de Sens Ecuelles, 77250 Moret-sur-Loing, France;

    Laboratoire MSSMat, UMR 8579 CNRS, Ecole Centrak Paris, Grande vote des Vignes, 92295 Chatenay-Malabry Cedex, France;

    Laboratoire MSSMat, UMR 8579 CNRS, Ecole Centrak Paris, Grande vote des Vignes, 92295 Chatenay-Malabry Cedex, France;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    thermal fatigue; fatigue criteria; polycrystal modelling; surface conditions; 304L stainless steel;

    机译:热疲劳疲劳标准;多晶建模表面条件;304L不锈钢;

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