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EVALUATION OF TOUGHNESS CHARACTERISTICS OF API GRADE PIPELINE STEEL PRODUCED ON COMPACT STRIP PRODUCTION (CSP) LINE

机译:紧凑型钢带生产线API等级管线钢的韧性指标评价

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As concerns for environmental impact of oil and gas transmission pipelines and overall public safety of the transmission pipeline systems are raised in the public domain, development of optimum toughness characteristics are a key attribute. Toughness performance as measured by charpy impact testing or drop weight tear testing (DWTT) is heavily influenced first by the average transformed grain size and more importantly the cross sectional uniformity/distribution. In addition, the crystallographic texture created can further improve or detract from the toughness performance. The final transformed cross sectional grain size along with the uniformity/distribution is heavily influenced by the available total metallurgical reduction ratio, microalloy design, proper generation of the various recrystallization behavior types during rolling, critical per pass reductions and the final post rolling cooling rate. The final crystallographic texture is influenced by final rolling temperature, cooling rate and final cooling stop temperature. When the final cross sectional grain size and overall uniformity/distribution are marginal for optimum toughness, the addition of favorable crystallographic textures can enhance the toughness performance. The challenge of producing optimum toughness on a thin slab caster, <100 mm thickness, is well known due to the available metallurgical reduction ratios. Typically, for API grade steels, a metallurgical reduction ratio ≥7:1 is required in order to achieve optimum toughness. However, in a thin slab caster the maximum metallurgical reduction ratios possible can be between 5:1 and 7:1 depending on the final thickness. Nucor Steel Gallatin has been working to optimize the overall toughness of API X-grades for transmission pipeline steels in thicknesses up to 12.7 mm using their thin slab Compact Strip Production (CSP) production facility. By utilizing a proper understanding of reducing the as-cast thin slab, along with the key alloy/process attributes and recrystallization behavior kinetics during the rolling process to optimize the final transformed cross sectional grain size and more importantly the uniformity/distribution, a high level of toughness performance can be realized. In addition, a further understanding of the contribution of specific crystallographic textures can further improve the toughness performance of these grades. This paper will discuss alloy/process parameters that have been studied and optimized to improve the low temperature toughness of API steels. In addition, toughness performance and metallographic characterization of different processing parameters will be presented.
机译:随着在公共领域中对油气输送管道的环境影响和输送管道系统的整体公共安全的关注,开发最佳韧性特性是关键属性。通过夏比冲击试验或落锤撕裂试验(DWTT)测得的韧性性能首先受到平均转化晶粒度的影响,更重要的是,其横截面的均匀性/分布会受到严重影响。另外,产生的晶体织构可以进一步改善或降低韧性性能。最终的转变后的横截面晶粒尺寸以及均匀性/分布在很大程度上受到可用的总冶金还原率,微合金设计,轧制过程中各种重结晶行为类型的适当生成,每道次压下率的降低以及最终的轧后冷却速率的影响。最终的晶体织构受最终轧制温度,冷却速率和最终冷却停止温度的影响。当最终横截面的晶粒尺寸和整体均匀性/分布对于最佳韧性而言是微不足道的时,添加良好的晶体织构可以增强韧性性能。由于可用的冶金还原率,在厚度小于100 mm的薄板坯连铸机上产生最佳韧性的挑战是众所周知的。通常,对于API级钢,要求冶金还原比≥7:1,才能获得最佳的韧性。但是,在薄板坯连铸机中,取决于最终厚度,最大的冶金还原率可能在5:1到7:1之间。 Nucor Steel Gallatin一直在使用薄板紧凑带材生产(CSP)生产设备来优化厚度最大为12.7 mm的输送管道钢的API X级钢的整体韧性。通过充分利用减少铸态薄板坯的认识,以及关键的合金/工艺属性和轧制过程中的再结晶行为动力学,来优化最终的变形横截面晶粒尺寸,更重要的是使均匀性/分布最优化可以实现韧性性能。另外,对特定晶体织构的贡献的进一步理解可以进一步改善这些等级的韧性性能。本文将讨论经过研究和优化以提高API钢的低温韧性的合金/工艺参数。此外,还将介绍不同加工参数的韧性和金相表征。

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