高温充氢后含碳化钛和碳化钒钢的氢捕集和脆化现象

IF 4.4 3区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY Journal of Materials Science Pub Date : 2024-04-25 DOI:10.1007/s10853-024-09611-7
Tim Boot, Athira Suresh Kumar, Santhana Eswara, Pascal Kömmelt, Amarante Böttger, Vera Popovich
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引用次数: 0

摘要

这项工作研究了 TiC 和 VC 沉淀尺寸对氢捕集和脆性的影响。在氮气和氢气中对两种试验性铁素体 HSLA 钢进行退火,这两种钢均含有用于析出强化的 TiC 或 VC 碳化物。这使得 TiC 和 VC 钢的氢吸收量分别高达 0.91 和 0.44 wppm。TEM 和 TDS 分析表明,半相干 TiC 粒子在错位位错中捕获氢,活化能为 43 kJ/mol。相干的 VC 粒子被认为在界面碳空位中捕集氢,能量介于 53 和 72 kJ/mol 之间。碳空位可能是非相干析出物的捕集位置,SIMS 成像证实非相干 TiC 析出物优先在界面附近捕集,而非相干 VC 析出物则在整个体中捕集氢。在吸氢后的 SSRT 测试中,两种合金均未发生脆化,这表明这些析出物既可用作钢的氢汇,也可用作钢的强化机制。
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Hydrogen trapping and embrittlement of titanium- and vanadium carbide-containing steels after high-temperature hydrogen charging

This work studies the effect of TiC and VC precipitate sizes on hydrogen trapping and embrittlement. Two experimental ferritic HSLA steels containing either TiC or VC carbides for precipitation strengthening are annealed in nitrogen and hydrogen gas. This results in a hydrogen uptake of up to 0.91 and 0.44 wppm in the TiC and VC steels, respectively. TEM and TDS analysis indicate that semi-coherent TiC particles trap hydrogen in misfit dislocations with an activation energy of 43 kJ/mol. Coherent VC particles are suggested to trap hydrogen in interface carbon vacancies, with an energy between 53 and 72 kJ/mol. Carbon vacancies are the likely trapping site in incoherent precipitates, where SIMS imaging confirms that incoherent TiC precipitates trap preferentially near the interface, whereas incoherent VC precipitates trap throughout their bulk. Neither alloy is embrittled in SSRT tests after hydrogen absorption, which shows that these precipitates can be used as both a hydrogen sink and a strengthening mechanism in steels.

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来源期刊
Journal of Materials Science
Journal of Materials Science 工程技术-材料科学:综合
CiteScore
7.90
自引率
4.40%
发文量
1297
审稿时长
2.4 months
期刊介绍: The Journal of Materials Science publishes reviews, full-length papers, and short Communications recording original research results on, or techniques for studying the relationship between structure, properties, and uses of materials. The subjects are seen from international and interdisciplinary perspectives covering areas including metals, ceramics, glasses, polymers, electrical materials, composite materials, fibers, nanostructured materials, nanocomposites, and biological and biomedical materials. The Journal of Materials Science is now firmly established as the leading source of primary communication for scientists investigating the structure and properties of all engineering materials.
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