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DEVELOPMENT OF X80M LINE PIPE STEEL FOR SPIRAL WELDED PIPES WITH LOW TEMPERATURE TOUGHNESS AND EXCELLENT WELDABILITY

机译:X80M低温韧性和优异可焊性螺旋焊管的研制

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The unique combination of high strength and low temperature toughness on heavy wall thickness coils allows higher operating pressures in large diameter spiral welded pipes and could represent a 10% reduction in life cycle cost on long distance gas pipe lines. One of the current processing routes for these high thickness grades is the thermo-mechanical controlled processing (TMCP) route, which critically depends on the austenite conditioning during hot forming at specific temperature in relation to the aimed metallurgical mechanisms (recrystallization, strain accumulation, phase transformation). Detailed mechanical and microstructural characterization on selected coils and pipes corresponding to the X80M grade in 24 mm thickness reveals that effective grain size and distribution together with the through thickness gradient are key parameters to control in order to ensure the adequate toughness of the material. Studies on the softening behavior revealed that the grain coarsening in the mid-thickness is related to a decrease of strain accumulation during hot rolling. It was also observed a toughness detrimental effect with the increment of the volume fraction of M/A (martensite/ retained austenite) in the middle thickness of the coils, related to the cooling practice. Finally, submerged arc weldability for spiral welded pipe manufacturing was evaluated on coil skelp in 24 mm thickness. The investigations revealed the suitability of the material for spiral welded pipe production, preserving the tensile properties and maintaining acceptable toughness values in the heat-affected zone. The present study revealed that the adequate chemical alloying selection and processing control provide enhanced low temperature toughness on pipes with excellent weldability formed from hot rolled coils X80 grade in 24 mm thickness produced at ArcelorMittal Bremen.
机译:高强度和低温韧性在厚壁厚盘管上的独特组合使大直径螺旋焊管具有更高的工作压力,并且可以使长距离燃气管道的生命周期成本降低10%。这些高厚度等级的当前加工路线之一是热机械控制加工(TMCP)路线,该路线主要取决于在特定温度下热成型过程中的奥氏体状态,与目标冶金机制(再结晶,应变积累,相变)有关。转型)。对选定的24mm厚度X80M等级的盘管和管道的详细机械和微观结构表征表明,有效的晶粒度和分布以及贯穿的厚度梯度是控制关键参数,以确保材料具有足够的韧性。对软化行为的研究表明,中厚晶粒粗化与热轧过程中应变积累的减少有关。还观察到,随着冷却实践,随着卷材中间厚度的M / A(马氏体/残余奥氏体)体积分数的增加,韧性受到不利影响。最后,在24mm厚的盘绕短管上评估了螺旋焊管制造的埋弧焊可焊性。调查显示该材料适用于螺旋焊管生产,在热影响区中保持拉伸性能并保持可接受的韧性值。本研究表明,适当的化学合金选择和工艺控制可提高由ArcelorMittal Bremen生产的X80级热轧卷材(厚度为24 mm)形成的,具有出色焊接性的管道的低温韧性。

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