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Welding Residual Stress Analysis and Fatigue Crack Growth Characteristics of Multi-Pass Welded Pipe Weldment

机译:多道次焊管焊接残余应力分析及疲劳裂纹扩展特征

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摘要

Welding residual stresses are generated as a result of the large nonlinear thermal loading by a moving heat source. Moreover, multi-pass welding of thick section subjects to multiple thermal cycles and inelastic strain patterns. Thus, more complex residual stress distribution is generated through the plate thickness. When these residual stresses are tensile, it makes increase the crack driving force and reduce the resistance of brittle fracture. Therefore, accurate prediction of residual stresses is very important. In this study, welding residual stresses of the multi-pass welded Al06 Gr B steel pipe weldment were analyzed by finite element analysis (FEA) using the element rebirth technique, and compared with experimental results. And then, in order to estimate fatigue crack growth characteristics considered the effect of residual stresses, concept of crack closure effect was introduced. From the results, the trend of welding residual stress distribution that was calculated by using the element rebirth technique of FEA was well agreed with the experimental result. And crack closure phenomena was not observed above R =0.5. And also, K_op/K_max was independent of K_max Considering crack closure phenomenon in Al06 Gr B Steel weldment, fatigue crack growth characteristic curves can be effectively estimated.
机译:焊接残余应力是由于移动的热源产生的较大的非线性热负荷而产生的。而且,厚截面的多道次焊接会经历多个热循环和非弹性应变模式。因此,通过板的厚度会产生更复杂的残余应力分布。当这些残余应力为拉伸应力时,会增加裂纹驱动力并降低脆性断裂的阻力。因此,准确预测残余应力非常重要。在这项研究中,使用元素重生技术通过有限元分析(FEA)分析了多道次焊接的Al06 Gr B钢管焊件的焊接残余应力,并与实验结果进行了比较。然后,为了评估考虑残余应力影响的疲劳裂纹扩展特征,引入了裂纹闭合效应的概念。结果表明,采用有限元分析的元素重生技术计算出的焊接残余应力分布趋势与实验结果吻合良好。并且在R = 0.5以上未观察到裂纹闭合现象。而且,K_op / K_max与K_max无关。考虑到Al06 Gr B钢焊件的裂纹闭合现象,可以有效地估计疲劳裂纹扩展特征曲线。

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