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AN ANALYTICAL METHOD FOR ESTIMATING WELDING-INDUCED PLASTIC ZONE SIZE FOR RESIDUAL STRESS PROFILE DEVELOPMENT

机译:估算残余应力轮廓发展的焊接塑性区尺寸的解析方法

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As demonstrated in a recent comprehensive study on construction of full-field residual stress profiles for fitness-for-service assessment of pressure vessel and piping components, a reasonable estimate of welding-induced plastic zone size is necessary for introducing a shell theory based solution form (Song et al, 2015). This paper presents an analytical method for estimating plastic zone size by first solving an equivalent one dimensional heat transfer problem in which weld zone is represented by a line segment with initial temperature at melting. Thermoplasticity conditions are then imposed by assuming elastic perfectly plastic behaviors. Finally, an analytical expression is obtained to relate plastic zone boundary to maximum temperature field distribution experienced by material points within the whole domain over the entire heating and cooling history. The solution can be further expressed by a rather simple form with the identification of a characteristic length parameter that signifies inflection point of temperature distribution. So estimated plastic zone sizes for various welded joint types have been compared with finite element residual stress analysis results in which sequentially coupled welding heat transfer and thermo-mechanical analysis procedures are used. A good agreement has been achieved for all cases analyzed. Compared with conventional finite element residual stress analysis procedures, this method offers significant simplicity and efficiency, while being reasonably accurate, particularly for applications in residual stress profile estimation and in evaluation of welding induced distortions in complex structures.
机译:正如最近对用于压力容器和管道组件的适用性评估的全场残余应力分布图构建的全面研究所证明的那样,为引入基于壳理论的解决方案形式,必须合理估算焊接引起的塑性区大小(Song等,2015)。本文提出了一种通过首先解决等效的一维传热问题来估算塑性区尺寸的分析方法,该问题中,焊接区是由熔化时初始温度的线段代表的。然后通过假设弹性完全塑性行为来施加热塑性条件。最后,获得一个解析表达式,将塑性区边界与整个加热和冷却历史中整个区域内的材料点所经历的最大温度场分布相关联。该解决方案还可以通过一种相当简单的形式来表示,该形式具有识别表示温度分布拐点的特征长度参数。因此,已将各种焊接接头类型的估计塑性区大小与有限元残余应力分析结果进行了比较,在有限分析结果中使用了顺序耦合的焊接传热和热机械分析程序。对于所分析的所有案例均已达成良好协议。与传统的有限元残余应力分析程序相比,该方法具有显着的简便性和效率,同时相当准确,尤其适用于残余应力分布估算和复杂结构中焊接引起的变形的评估。

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