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THE PRACTICAL APPLICATION OF FRACTURE CONTROL TO NATURAL GAS PIPELINES

机译:裂缝控制对天然气管道的实际应用

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The use of high strength, high design-factor pipe to transport natural gas requires the careful design and selection of pipeline materials. A primary material concern is the characterization and control of ductile fracture initiation and arrest. Impact toughness in the form of Charpy V-notch energies or drop-weight tear tests is usually specified in the design and purchase of line pipe in order to prevent large-scale fracture. While minimum values are prescribed in various codes, they may not offer sufficient protection in pipelines with high pressure, cold temperature, rich gas designs. The implications of the crack driving force arising from the gas decompression versus the resisting force of the pipe material and backfill are examined. The use and limitations of the Battelle two-curve method as the standard model are compared with new developments utilizing crack-tip opening angle and other techniques. The methodology and reasoning used to specify the material properties for line pipe are described and the inherent limits and risks are discussed. The applicability of Charpy energy to predict ductile arrest in high strength pipes (X80 and above) is examined.
机译:采用高强度,高设计系数管道运输天然气需要仔细的设计和选择管道材料。主要物质关注的是延性骨折启动和逮捕的表征和控制。夏比V-Notch能量或滴重撕裂试验的影响韧性通常在设计和购买的线管中规定,以防止大规模的裂缝。虽然最小值在各种代码中规定,但它们可能无法在具有高压,寒冷温度,富含气体设计的管道中提供足够的保护。研究了气体减压引起的裂缝驱动力与管材和回填的抗力的影响。与利用裂缝尖端打开角度和其他技术的新发展相比,Battelle双曲线方法的使用和限制。描述了用于指定线管的材料特性的方法和推理,并讨论了固有的限制和风险。检查夏比能量预测高强度管(X80及以上)的延展性停滞的适用性。

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