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Effect of Tempering Temperature after Thermo-Mechanical Control Process on Microstructure Characteristics and Hydrogen-Induced Ductility Loss in High-Vanadium X80 Pipeline Steel

机译:热机械控制工艺后的回火温度对高钒X80管线钢的组织性能和氢致延展性的影响

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摘要

In this study, an optimum tempering temperature after a thermo-mechanical control process (TMCP) was proposed to improve the hydrogen-induced ductility loss of high-vanadium X80 pipeline steel. The results showed that with increasing tempering temperature from 450 to 650 °C, the size and quantity of granular bainite decreased but the spacing of deformed lath ferrite and the fraction of massive ferrite increased. The number of fine vanadium carbides increased as well. However, as the tempering temperature increased to 700 °C, the microstructure of T700 steel completely converted to massive ferrite and the grain size became larger. Additionally, the amount of nanoscale precipitates decreased again, and the mean size of precipitates evidently increased in T700 steel. The steel tempering at 650 °C, containing the most vanadium precipitates with a size less than 20 nm, had the lowest hydrogen diffusion coefficient and the best resistance to hydrogen-induced ductility loss.
机译:在这项研究中,提出了在热机械控制过程(TMCP)之后的最佳回火温度,以改善氢引起的高钒X80管线钢的延性损失。结果表明,随着回火温度从450℃升高到650℃,贝氏体颗粒的尺寸和数量减小,而板条形铁素体的变形间距和块状铁素体的比例增加。细碳化钒的数量也增加了。但是,随着回火温度升至700°C,T700钢的显微组织完全转变为块状铁素体,晶粒尺寸变大。另外,T700钢中的纳米级析出物数量再次减少,并且平均析出物大小明显增加。在650°C的温度下回火的钢中,钒析出物最多,且尺寸小于20 nm,具有最低的氢扩散系数和对氢致延展性损失的最佳抵抗力。

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