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Impact of Weld Sequencing and Fabrication on Residual Stress Fields

机译:焊接定序和制造对残余应力场的影响

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Welding is the most commonly used and one of the most important material joining processes widely used in the heavy fabrication industries, particularly in nuclear energy industry. Residual stresses in welded components can reduce the lifetime of nuclear components significantly. Welding residual stresses in nuclear power plants can lead to stress-corrosion cracking concerns; however, the ASME code only accounts for fatigue degradation and not stress corrosion cracking (SCC) in its design criteria although there have been a number of SCC failures and few fatigue failures for primary pressure boundary systems. A number of mitigation strategies have been proposed such as Mechanical Stress Improvement Process (MSIP), Full and Optimized Structural Weld Overlay (FSWOL, OWOL), and Inlay and Onlay cladding. Emc~2 has conducted extensive welding residual stress studies for a series of critical components in the nuclear energy industry. The welds studied here have different groove geometries, different weld and repair sequencing, post-weld heat treatment (PWHT) procedures, among other differences. This paper summarizes these results and further shows how the weld sequencing can impact residual stress fields and could potentially mitigate SCC for future plants. Some general discussion and comments on mitigation of SCC will be included in the paper.
机译:焊接是在重型制造行业(尤其是核能行业)中广泛使用的最常用的方法,也是最重要的材料连接方法之一。焊接部件中的残余应力会大大缩短核部件的寿命。焊接核电站中的残余应力会导致应力腐蚀开裂问题。但是,ASME规范在其设计标准中仅考虑了疲劳退化,而没有考虑应力腐蚀开裂(SCC),尽管对于主压力边界系统而言,存在许多SCC故障,而疲劳故障很少。已经提出了许多缓解策略,例如机械应力改善过程(MSIP),完整和优化的结构堆焊层(FSWOL,OWOL)以及嵌体和嵌体包层。 Emc〜2对核能工业中的一系列关键部件进行了广泛的焊接残余应力研究。此处研究的焊缝具有不同的坡口几何形状,不同的焊缝和修补顺序,焊后热处理(PWHT)程序以及其他差异。本文总结了这些结果,并进一步说明了焊接顺序如何影响残余应力场,并有可能减轻未来工厂的SCC。本文将就缓解SCC进行一些一般性讨论和评论。

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