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Summary of Weld Residual Stress Analyses for Dissimilar Metal Weld Nozzles

机译:异种金属焊接喷嘴的焊接残余应力分析摘要

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Flaw indications have been found in some dissimilar metal nozzle to stainless steel piping welds in pressurized water reactors (PWR) throughout the world. The nozzle welds usually involve welding ferritic (often A508) nozzles to 304/316 stainless steel pipe using Alloy 182/82 weld metal. Due to an unexpected aging issue with the weld metal, the weld becomes susceptible to a form of corrosion cracking referred to as primary water stress corrosion cracking (PWSCC). It can occur if the temperature is high enough (usually >300C) and the water chemistry in the PWR is typical of operating plants. This paper represents one of a series of papers which examine the propensity for cracking in a particular operating PWR in the UK. This paper represents an examination of the weld residual stress distributions which occur in four different size nozzles in the plant. Companion papers in this conference examine crack growth and PWSCC mitigation efforts related to this plant.British Energy (BE) has developed a work program to assess the possible impact of PWSCC on dissimilar metal welds in the primary circuit of the Sizewell 'B' pressurized water reactor. This effort has included the design and manufacture of representative PWR safety/relief valve nozzle welds both with and without a full structural weld overlay, multiple residual stress measurements on both mock-ups using the deep hole and incremental deep hole methods, and a number of finite element weld residual stress simulations of both the mock-ups and equivalent plant welds. This work is summarized in companion papers [1-3].Here, the detailed weld residual stress predictions for these nozzles are summarized. The weld residual stresses in a PWR spray nozzle, safety/relief nozzle, surge nozzle, and finally a steam generator hot-leg nozzle are predicted here using an axis-symmetric computational weld solution process. The residual stresses are documented and these feed into a natural crack growth analysis provided in a companion PVP 2010-25162 paper [1]. The solutions are made using several different constitutive models: kinematic hardening, isotropic hardening, and a mixed hardening model. Discussion will be provided as to the appropriateness of the constitutive model for multi-pass DM weld modeling. In addition, the effect of including or neglecting the post-weld heat treatment process, which typically occurs after the buttering process in a DM weld, is presented. During operation the DM welds in a PWR experience temperatures in excess of 300°C. The coefficient of thermal expansion (CTE) mismatch between the three materials, particularly the higher CTE in the stainless steel, affects the stresses at operating temperature. The K-weld geometry used in the steam generator nozzles in this plant combines with CTE mis-match effects to result in service stresses somewhat different from V-weld groove cases.
机译:全世界在压水堆(PWR)的某些与不锈钢管道焊缝不同的金属喷嘴中都发现了缺陷迹象。喷嘴焊缝通常包括使用182/82合金焊接金属将铁素体(通常为A508)喷嘴焊接到304/316不锈钢管上。由于焊缝金属的意外老化问题,焊缝易受腐蚀裂纹形式的影响,这种腐蚀裂纹称为一次水应力腐蚀裂纹(PWSCC)。如果温度足够高(通常> 300C)并且PWR中的水化学性质是运行工厂的典型现象,则可能发生这种情况。本文代表了一系列研究英国某特定运行中的压水堆开裂倾向的论文之一。本文代表对在工厂中四个不同尺寸的喷嘴中出现的焊接残余应力分布的检查。在这次会议上的同伴论文探讨了与该植物有关的裂纹扩展和PWSCC缓解措施。 英国能源公司(BE)已制定了一项工作计划,以评估PWSCC对Sizewell'B'压水反应堆一次回路中不同金属焊缝的可能影响。这项工作包括设计和制造具有和不具有完整结构堆焊层的代表性PWR安全/溢流阀喷嘴焊缝,使用深孔和增量深孔方法在实体模型上进行多次残余应力测量,以及许多模拟和等效工厂焊缝的有限元焊缝残余应力模拟。这项工作在随附的论文[1-3]中进行了总结。 在此,总结了这些喷嘴的详细焊接残余应力预测。此处使用轴对称计算焊接解决方案来预测PWR喷嘴,安全/释放喷嘴,调压喷嘴以及最后的蒸汽发生器热腿喷嘴中的焊接残余应力。残余应力已记录在案,并随同PVP 2010-25162 [1]提供给自然裂纹扩展分析。这些解决方案是使用几种不同的本构模型制成的:运动硬化,各向同性硬化和混合硬化模型。将讨论本构模型在多道次DM焊接建模中的适用性。另外,提出了包括或忽略通常在DM焊中涂黄油后发生的焊后热处理过程的效果。在操作过程中,压水堆中的DM焊接温度超过300°C。三种材料之间的热膨胀系数(CTE)不匹配,尤其是不锈钢中较高的CTE,会影响工作温度下的应力。该工厂的蒸汽发生器喷嘴中使用的K焊几何形状与CTE失配效应相结合,导致使用应力与V焊槽情况有所不同。

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