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THE ESSENTIAL WELDING VARIABLE APPROACH AND ITS APPLICATION TO THE WELDING OF X80 LINE PIPE STEELS

机译:基本焊接可变方法及其在X80管线钢焊接中的应用

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A weld quality control approach developed for the welding of high-strength pipeline steels has demonstrated its effectiveness in achieving reliability and consistency in the mechanical performance of girth welds. Using a predictive tool that can relate cooling times of welding thermal cycles with welding parameters and with the knowledge of microstructure responses of both pipe materials and weld metals to welding thermal cycles, the approach can evaluate the effects of welding parameters on weld properties and identify the essential welding variables. As a result, the essential welding variable approach can be used to optimize and help shorten the process of welding procedure development. The current paper presents the application of the essential welding variable approach to the girth welding of X80 pipeline steels. The application started with the selection of pipe materials, welding consumables, and candidate welding procedures. The selection of actual weld procedures and a welding matrix were made after the candidate welding procedures were analyzed in terms of cooling times. Girth welds for two X80 pipes of different chemical compositions, outside diameters, and wall thicknesses were made with single and dual torch GMAW-P processes and a range of welding consumables. The welding parameters were monitored and recorded for all welds; and the thermal cycles of selected welds were measured by thermocouples. Small-scale testing, including all-weld-metal tensile test, Charpy impact toughness and CTOD fracture toughness tests, were evaluated and correlated with microstructures formed in the HAZ of the girth welds. The material responses of heat-affected zone (HAZ) to thermal cycles of typical GMAW-P single and dual torch processes were experimentally simulated (Gleeble®). Detailed welding thermal cycle analyses were conducted based on the measured welding parameters. Cooling times of welding thermal cycles for the girth welds were calculated and correlated with the material responses, of X80 pipe steels to welding thermal cycles. The correlation demonstrated very good consistency between the cooling times, the results of the Gleeble simulation, and the mechanical properties of the girth welds. The dependency of the weld properties on welding parameters was analyzed in terms of cooling times, and the optimization strategy for development of welding procedures that offer more balanced welding properties between strength and toughness was evaluated by adjusting the essential welding variables. In summary, the process of applying the essential welding variable approach and the results from the tests and the analyses showed that the approach is capable of evaluating the effects of welding parameters on weld properties, identifying the essential welding variables, and ultimately optimizing welding procedures.
机译:为高强度管线钢的焊接而开发的焊接质量控制方法已经证明了其在实现环焊缝机械性能的可靠性和一致性方面的有效性。通过使用一种预测工具,该工具可以将焊接热循环的冷却时间与焊接参数相关联,并了解管道材料和焊接金属的微观结构对焊接热循环的响应,该方法可以评估焊接参数对焊接性能的影响并确定焊接参数。基本焊接变量。因此,基本的焊接变量方法可用于优化并帮助缩短焊接工艺开发过程。本文介绍了基本焊接变量法在X80管线钢的环焊中的应用。该应用程序从选择管道材料,焊接材料和候选焊接程序开始。在根据冷却时间对候选焊接程序进行了分析之后,才选择实际的焊接程序和焊接矩阵。使用单焊枪和双焊枪GMAW-P工艺以及一系列焊接材料制造了两个化学成分,外径和壁厚不同的X80管的环焊缝。监控并记录所有焊缝的焊接参数;并通过热电偶测量所选焊缝的热循环。对包括全焊缝金属拉伸试验,夏比冲击韧性和CTOD断裂韧性试验在内的小规模试验进行了评估,并将其与在环焊缝的热影响区中形成的微观结构相关联。实验模拟了热影响区(HAZ)对典型GMAW-P单焊炬和双焊炬工艺的热循环的材料响应。根据测得的焊接参数进行详细的焊接热循环分析。计算出环焊缝的焊接热循环的冷却时间,并将其与X80钢管对焊接热循环的材料响应相关联。相关性表明冷却时间,Gleeble模拟结果和环缝焊缝的机械性能之间具有很好的一致性。从冷却时间的角度分析了焊接性能对焊接参数的依赖性,并通过调整基本焊接变量,评估了在强度和韧性之间提供更加平衡的焊接性能的焊接工艺开发的优化策略。总之,应用基本焊接变量方法的过程以及测试和分析的结果表明,该方法能够评估焊接参数对焊接性能的影响,确定基本焊接变量,并最终优化焊接程序。

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