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COUPLING METALLURGY AND MANUFACTURING PARAMETERS OF PIPELINE FITTINGS TO AVOID SUBSTANDARD PROPERTIES

机译:耦合冶金和管道配件的制造参数,以避免不合格特性

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High strength, butt-welded pipeline fittings are critical components for the construction of reliable and safe pipeline systems to extract, gather and transmit oil and gas products. Due to stringent safety and environmental requirements, fittings manufacturers are obliged to adhere to commonly accepted industry standards (e.g. CSA Z245.11, MSS-SP-75) and adopt supplementary operators' specifications. Nevertheless, there have been several recent cases where fittings delivered by qualified manufacturers and available through local stock suppliers have not met the specified tensile properties, such that they failed during hydrostatic pressure tests or in-service operations. The issue has triggered concerns of operators and regulators (e.g. NEB SA 2016-01) warning about the use of substandard fittings. Although deficiencies in engineering design or operation beyond permissible conditions could be contributing factors, the root cause of the recent fittings failures was mainly associated with the underlying metallurgy and processing resulting in critically low yield strength and/or toughness levels. Further, existing standards and specifications are not stringent enough to screen out fittings with inadequate steel composition or improper manufacturing parameters. As such, a comprehensive modelling and experimental study has been launched to understand the interplay between the composition, grade, geometry and plant-specific processing parameters of quenched and tempered pipeline components. The experiment entailed plant trials using an instrumented NPS 36" 3D elbow to measure the actual thermal response of the fitting during reheating, quenching and tempering cycles. Data was acquired from 36 different positions on the part in order to monitor any deviations from intended production parameters. Further, the metallurgical behaviour of the base steel plate, in terms of austenite grain growth, continuous cooling transformations (CCT) and temper softening of the as-quenched microstructure, has been established by dilatometric tests and microstructural characterization. The analysis and coupling of these diverse data sets is not trivial and requires scientific-based computational modelling. An integrated thermal-structure-properties finite element model was developed to predict the temporal and spatial evolution of the microstructure and provide a 3D strength map for any as-quenched and as-tempered fitting. This predictive engineering tool aids the selection of adequate steels and suitable heat treatment parameters such that target gauges and grades can be manufactured by a given plant to meet the specified requirements and standards. This paper describes the aforementioned methodology and highlights the challenges associated with the manufacture of fittings; in particular thick-wall pipeline components. Further, guidelines and existing knowledge gaps for improved specifications and standards will be discussed.
机译:高强度,对接管道配件是建造可靠和安全的管道系统的关键部件,以提取,聚集和传递油和天然气产品。由于安全和环境要求严格,配件制造商有义务遵守普通接受的行业标准(例如CSA Z245.11,MSS-SP-75)并采用补充运营商的规格。尽管如此,有几个近期案件,合格的制造商提供的配件,通过当地股票供应商提供的股票供应商没有达到指定的拉伸性能,使得它们在静水压力测试或在职操作期间失效。该问题引发了运营商和监管机构的担忧(例如,NEB SA 2016-01)关于使用不合格配件的警告。虽然工程设计或操作超出允许条件的缺陷可能是有贡献因素,但最近的配件故障的根本原因主要与潜在的冶金和加工相关,导致屈服强度和/或韧性水平。此外,现有的标准和规格不足以筛选出钢结构或制造参数不当的配件。因此,已经启动了全面的建模和实验研究,以了解淬火和淬火管道组分的组成,等级,几何和植物特异性加工参数之间的相互作用。该实验需要使用仪器的NPS 36“3D弯头的工厂试验,以测量在再加热,淬火和回火循环期间拟合的实际热响应。数据是从部分中获取的36个不同的位置,以便监测来自预期生产参数的任何偏差。此外,通过稀释测试和微观结构表征,建立了基础钢板的冶金行为,即奥氏体谷物生长,连续冷却转化(CCT)和淬火微观结构的调火软化。这些不同的数据集不是微不足道的,并且需要基于科学的计算建模。开发了一种集成的热结构性能有限元模型以预测微观结构的时间和空间演化,并为任何像淬火和如此提供3D强度图。 - 佩戴的配件。这种预测工程工具辅助选择适当的钢和合适的热处理参数,使得靶仪和等级可以通过给定的植物制造,以满足规定的要求和标准。本文介绍了上述方法,并突出了与配件制造相关的挑战;特别是厚壁管道组件。此外,将讨论改进规格和标准的指导方针和现有知识差距。

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