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MEASUREMENTS OF FATIGUE CRACK GROWTH RATES OF THE HEAT- AFFECTED ZONES OF WELDS OF PIPELINE STEELS

机译:管线钢热影响区疲劳裂纹扩展速率的测量

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Pipelines are widely accepted to be the most economical method for transporting large volumes of hydrogen, needed to fuel hydrogen-powered vehicles. Some work has been previously conducted on the fatigue crack growth rates of base metals of pipeline materials currently in use for hydrogen transport and on pipeline materials that may be used in the future. However, welds and their heat-affected zones are oftentimes the source and pathway for crack initiation and growth. The heat-affected zones of welds can exhibit low resistance to crack propagation relative to the base metal or the weld itself. Microstructural irregularities such as chemical segregation or grain-size coarsening can lead to this low resistance. Therefore, in order to have adequate information for pipeline design, the microstructures of the heat-affected zones must be characterized, and their mechanical properties must be measured in a hydrogen environment. With that in mind, data on the fatigue crack growth rate is a critical need. We present data on the fatigue crack growth rate of the heat-affected zones for two girth welds and one seam weld from two API 5L X52 pipes. The materials were tested in hydrogen gas pressurized to 5.5 MPa and 34 MPa at a cyclic loading rate of 1 Hz, and an R ratio of 0.5.
机译:管道是运输氢燃料车辆所需的大量氢的最经济方法,已被广泛接受。先前已经对当前用于氢传输的管道材料的贱金属和将来可能使用的管道材料的疲劳裂纹增长率进行了一些工作。但是,焊缝及其热影响区通常是裂纹萌生和扩展的来源和途径。焊缝的热影响区相对于母材或焊缝本身,对裂纹扩展的抵抗力较低。微观结构的不规则(例如化学偏析或晶粒粗化)会导致这种低电阻。因此,为了获得足够的管道设计信息,必须对热影响区的微观结构进行表征,并且必须在氢气环境中测量其机械性能。考虑到这一点,关于疲劳裂纹增长率的数据非常重要。我们提供了两个API 5L X52管的两个环缝焊缝和一个缝焊缝的热影响区的疲劳裂纹增长率的数据。在压力为5.5 Hz和34 MPa的氢气中,以1 Hz的循环加载速率和0.5的R比对材料进行了测试。

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