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首页> 外文期刊>Journal of Korean Institute of Metal and Materials >Effects of Molybdenum on HIC Susceptibility in Normalized Pressure Vessel Steels for Sour Service Applications
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Effects of Molybdenum on HIC Susceptibility in Normalized Pressure Vessel Steels for Sour Service Applications

机译:钼对酸性服务应用归一化压力容器钢中HIC敏感性的影响

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This paper discusses a molybdenum-added alloy design for normalized pressure vessel steels, to reduce hydrogen induced cracking (HIC) and inhibit crack propagation. The change in microstructure produced by the modified alloy composition was analyzed to determine its effect on HIC characteristics. The microstructural change was observed by optical microscopy, hardness tests, scanning electron microscopy, and electron backscattered diffraction. The crack length ratio and crack thickness ratio were evaluated using the NACE TM 0284 standard, and ultrasonic testing was used for HIC analysis. The formation of polygonal ferrite and pearlite during the processing of the alloy creates localized areas of high stress concentration at the polygonal ferrite/pearlite interface, due to the expansion/contraction of various structures during the transformation. This results in the generation of potential hydrogen-trapping sites, subsequent HIC, and crack propagation. The addition of molybdenum leads to a decrease in the volume fraction of the pearlite structure in the steel in favor of a more beneficial bainitic ferrite microstructure, which is generated during the normalizing process. This bainitic transformation creates a more favorable expansion/contraction compatibility and reduces/breaks up the ferrite/pearlite banding. The combination of these two characteristics can result in an overall lower stress-intensity state, which can minimize hydrogen-trapping and crack propagation. This study demonstrates that the resistance of normalized pressure vessel steels to HIC can be significantly improved by incorporating molybdenum in the alloy design.
机译:本文讨论了常规压力容器钢的钼添加合金设计,以减少氢诱导的裂化(HIC)并抑制裂纹繁殖。分析改性合金组合物产生的微观结构的变化以确定其对HIC特性的影响。通过光学显微镜,硬度测试,扫描电子显微镜和电子反向散射衍射观察微观结构变化。使用NACE TM 0284标准评估裂缝长度和裂缝厚度比,而超声波测试用于HIC分析。在合金加工过程中形成多边形铁氧体和珠光体在多边形铁氧体/珠光体界面中产生局部区域的高应力浓度,这是由于各种结构在变换过程中的膨胀/收缩。这导致产生潜在的氢捕获位点,随后的HIC和裂纹繁殖。钼的加入导致钢中珠光体结构的体积分数的减少,有利于更有益的贝氏体铁氧体微观结构,其在归一化过程中产生。该贝氏体转换创造了更有利的扩展/收缩兼容性,并减少/分解了铁氧体/珠光体扎带。这两个特性的组合可以导致整体较低的应力强度状态,这可以最小化氢捕获和裂纹传播。该研究表明,通过在合金设计中掺入钼可以显着改善归一化压力容器钢对HIC的阻力。

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