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3D analysis for pit evolution and pit-to-crack transition during corrosion fatigue

机译:腐蚀疲劳过程中点蚀和点到裂纹过渡的3D分析

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摘要

This paper presents a deterministic model to predict the pit evolving morphology and crack initiation life of corrosion fatigue. Based on the semi-ellipsoidal pit assumption, the thermodynamic potential including elastic energy, surface energy and electrochemical energy of the cyclically stressed solid with an evolving pit is established, from which specific parameters that control the pit evolution are introduced and their influence on the pit evolution are evaluated. The critical pit size for crack nucleation is obtained from stress intensity factor criterion and the crack nucleation life is evaluated by Faraday’s law. Meanwhile, this paper presents a numerical example to verify the proposed model and investigate the influence of cyclic load on the corrosion fatigue crack nucleation life. The corrosion pit appears approximately as a hemisphere in its early formation, and it gradually transits from semicircle to ellipsoid. The strain energy accelerates the morphology evolution of the pit, while the surface energy decelerates it. The higher the stress amplitude is, the smaller the critical pit size is and the shorter the crack initiation life is.
机译:本文提出了一种确定性模型来预测腐蚀疲劳的点蚀演变形态和裂纹萌生寿命。基于半椭圆形凹坑假设,建立了具有不断演化的凹坑的循环应力固体的热力学势,包括弹性能,表面能和电化学能,从中引入了控制凹坑演化的具体参数及其对凹坑的影响。评估进化。根据应力强度因子准则获得裂纹成核的关键坑尺寸,并根据法拉第定律评估裂纹成核寿命。同时,本文提供了一个数值示例,以验证所提出的模型并研究循环载荷对腐蚀疲劳裂纹成核寿命的影响。腐蚀坑在其早期形成时大致呈半球状,并逐渐从半圆形过渡到椭圆形。应变能加速了凹坑的形貌演化,而表面能使凹坑减速。应力幅值越大,临界凹坑尺寸越小,裂纹萌生寿命越短。

著录项

  • 来源
    《Journal of Zhejiang University SCIENCE A》 |2013年第4期|292-299|共8页
  • 作者

    Xiao-guang Huang; Jin-quan Xu;

  • 作者单位

    Department of Engineering Mechanics China University of Petroleum">(13395);

    Department of Engineering Mechanics Shanghai Jiao Tong University">(23395);

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  • 正文语种 eng
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