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DEVELOPMENT OF A J-ESTEMATION SCHEME FOR SURFACE CRACKS IN PIPING WELDS

机译:管焊缝表面裂纹的J估计方案的开发

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The RSE-M Code provides rules and requirements for in-service inspection of French Pressurized Water Reactor power plants. The Code gives non mandatory guidance for analytical evaluation of flaws. Flaw assessment procedures rely on fracture mechanics analyses based on simplified methods (i.e. analytical). Analytical methods were developed under a cooperative program between EDF, CEA and AREVA NP to calculate the J integral in various cracked piping components (straight pipe, tapered transition, elbow and pipe-to-elbow junction). These methods are available for mechanical loading (in-plane bending moment, pressure, torsion moment), thermal loading as well as for combined loading. Moreover, they can be used either for materials with Ramberg-Osgood stress-strain curves or for real materials (stainless steels and carbon manganese steels, including those with yield plateaus). However, for the analysis of cracks in welds, they use the tensile properties of the weakest material between the base material and the weld material. This induces some conservatism on the estimated J values.A cooperative program was launched in 2004 to develop a J estimation scheme which takes into account the strength mismatch effects. The scheme relies on the definition of an 'equivalent' stress-plastic strain curve, as proposed in the R6 rule (section III.8: allowance for strength mismatch effects). This curve is then used with the analytical methods for homogeneous cracked components. In a first step, the method is developed for circumferential surface cracks in straight butt-welded pipes submitted to mechanical loading. It takes into account the geometry of the weld joint (V-shaped), as well as the location of the crack within the weld. This paper presents the current state of development of this J estimation-scheme.
机译:RSE-M规则为法国压水堆电厂的运行中检查提供了规则和要求。该准则为缺陷的分析评估提供了非强制性的指导。缺陷评估程序依赖于基于简化方法(即分析性)的断裂力学分析。在EDF,CEA和AREVA NP之间的合作程序下开发了分析方法,以计算各种破裂的管道组件(直管,锥形过渡,弯头和管对肘连接处)的J积分。这些方法可用于机械载荷(平面弯曲力矩,压力,扭转力矩),热载荷以及组合载荷。此外,它们既可以用于具有Ramberg-Osgood应力-应变曲线的材料,也可以用于实际材料(不锈钢和碳锰钢,包括屈服平稳的材料)。但是,为了分析焊缝中的裂纹,他们使用了基础材料和焊缝材料之间最弱的材料的拉伸性能。这在估计的J值上引起了一些保守。 2004年启动了一个合作程序,以开发一种J估计方案,该方案考虑了强度失配效应。该方案依赖于R6规则中提出的“等效”应力-塑性应变曲线的定义(第III.8节:强度失配效应的允许范围)。然后将此曲线与均质裂纹组件的分析方法一起使用。第一步,开发了用于在平直的对接中产生圆周表面裂纹的方法。 焊接管承受机械载荷。它考虑了焊接接头的几何形状(V形)以及焊缝中裂纹的位置。本文介绍了这种J估计方案的发展现状。

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