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CONTINUED MICROSTRUCTURE AND MECHANICAL PROPERTY PERFORMANCE EVALUATION OF COMMERCIAL GRADE API PIPELINE STEELS IN HIGH PRESSURE GASEOUS HYDROGEN

机译:高压气态氢气商业级API管道钢的持续组织和力学性能评价

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In spite of current world economic climates, recognition that alternative energy sources to the traditional fossil fuels has to be explored and understood. One potential energy source being researched and developed is hydrogen gas. Currently the most economical method of transporting large quantities of hydrogen gas is through steel pipelines. It is well known that hydrogen embrittlement has the potential to degrade steel's mechanical properties when hydrogen migrates into the steel matrix. Consequently, the current pipeline infrastructure used in hydrogen transport is typically operated in a conservative fashion. This operational practice is not conducive to economical movement of significant volumes of hydrogen gas as an alternative to fossil fuels. The degradation of the mechanical properties of steels in hydrogen service is known to depend on the microstructure of the steel. Understanding the levels of mechanical property degradation of a given microstructure when exposed to hydrogen gas under pressure can be used to evaluate the suitability of the existing pipeline infrastructure for hydrogen service and guide alloy and microstructure design for new hydrogen pipeline infrastructure. To this end, the microstructures of relevant steels and their mechanical properties in relevant gaseous hydrogen environments must be fully characterized to establish suitability for transporting hydrogen. Previously data from a US Department of Energy/private sector funded project to evaluate four commercially available pipeline steels alloy/microstructure performance in the presences of gaseous hydrogen was presented in 2010. Interest in this previous work from industry and the ASME B31.12 Hydrogen Piping and Pipeline Systems codes and standards committee resulted in additional funding for continued evaluation of additional pipeline steel alloys/microstructures in the presences of gaseous hydrogen. Samples from API grades X52 (1960's and current vintage designs), X70 (1980's and current vintage) and X80 along with various samples from an X52 induction bend pipe and one pressure vessel steel A516 Gr 70 are being evaluated. Microstructural characterization, fracture toughness and fatigue testing in the presence of gaseous hydrogen at 800 psig and 3,000 psig are being conducted. This paper will describe the fracture toughness results achieved to date on various commercially available pipeline steels used in the existing North American pipeline infrastructure in the presence of gaseous hydrogen at pressures relevant for transport in pipelines. Microstructures and fracture toughness performances will be compared between these in this study along with those published previously. In addition, recommendations for future work related to gaining a better understanding of steel pipeline performance in hydrogen service will be discussed.
机译:尽管目前的世界经济气息,但承认,必须探索和理解传统化石燃料的替代能源。研究和开发的一个潜在的能源是氢气。目前,运输大量氢气的最经济方法是通过钢水管道。众所周知,当氢迁移到钢基质中时,氢脆脆化有可能降低钢的机械性能。因此,氢传输中使用的目前的流水线基础设施通常以保守方式操作。这种操作实践不利于显着的氢气的经济运动,作为化石燃料的替代品。已知钢中钢的力学性能的降解依赖于钢的微观结构。理解给定微观结构的机械性能降解水平时,当暴露于压力下的氢气时可用于评估现有管道基础设施的适用性,用于新的氢水管道基础设施的氢气服务和引导合金和微观结构设计。为此,必须充分地表征相关钢的微观结构及其在相关气态氢环境中的机械性能以建立适合于运输氢的适用性。以前来自美国能源/私营部门资助项目的数据,以评估四种商用的管道钢合金/微观结构性能在2010年。在2010年举办了气态氢气的含量。对此从工业和ASME B31.12氢气管道的兴趣和管道系统守则和标准委员会导致额外的资金用于继续评估额外的气态氢气存在下额外的管道钢合金/微观结构。从API等级X52(1960年和当前的复古设计),X70(1980和当前复古)和X80以及来自X52感应弯管和一个压力容器钢A516GR00的各种样品的样品。在800psig和3,000psig下,进行微观结构表征,裂缝韧性和疲劳试验和3,000 psig。本文将描述迄今为止迄今为止在现有北美管道基础设施中使用的各种市售管道钢的裂缝韧性结果,该压力在管道上的运输过程中存在气态氢气。将在本研究中比较微观结构和裂缝韧性表演以及之前公布的那些研究。此外,还将讨论将来与未来工作有关的建议,将讨论在氢气服务中获得更好地了解钢水管道性能。

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