耐热 HP40NbTu 合金在高温氧化过程中形成表面保护层的机理

IF 0.6 4区 材料科学 Q4 METALLURGY & METALLURGICAL ENGINEERING Metal Science and Heat Treatment Pub Date : 2024-09-20 DOI:10.1007/s11041-024-01036-y
S. Yu. Kondrat’ev, A. V. Tsemenko
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引用次数: 0

摘要

利用扫描电子显微镜和 X 射线制图,在微观层面上对多组分多相 HP40NbTi 合金在 1150°C 高温空气中持续长达 500 小时的高温氧化过程进行了实验研究。结果表明,这一过程是在各种相互关联的机制影响下发生的。对合金在不同持续时间的氧化后,表面多层鳞片和次表层扩散区的成分和结构变化进行了持续研究。结果表明,经过长期暴露后,合金表层下区域建立了条件平衡;鳞片的形成和内部氧化耗尽了扩散区中的铬和硅。铬、镍和铁从金属主体向表面扩散,弥补了这一损失。由于扩散区深度的增加和硅氧化物 "屏障 "层的形成,这一过程会随着时间的推移而减慢。
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Mechanism of Formation of Surface Protective Layer in Heat-Resistant HP40NbTu Alloys during High-Temperature Oxidation

The process of high-temperature oxidation of multicomponent multiphase HP40NbTi alloy at 1150°C with duration of up to 500 hours in air is studied experimentally at the micro level using SEM and x-ray mapping. It is shown that the process occurs under the influence of various interrelated mechanisms. The changes in the composition and structure of the surface multilayer scale and of the subsurface diffusion zone in the alloy after oxidation of various durations are studied consistently. It is demonstrated that after a long-term exposure, conditional equilibrium is established in the alloy subsurface area; the formation of scale and the internal oxidation deplete the diffusion zone of chromium and silicon. This is compensated by the diffusion of Cr, Ni and Fe from the bulk of the metal to the surface. The process slows down with time due to the increase in the depth of the diffusion zone and formation of a “barrier” layer of silicon oxides.

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来源期刊
Metal Science and Heat Treatment
Metal Science and Heat Treatment 工程技术-冶金工程
CiteScore
1.20
自引率
16.70%
发文量
102
审稿时长
4-8 weeks
期刊介绍: Metal Science and Heat Treatment presents new fundamental and practical research in physical metallurgy, heat treatment equipment, and surface engineering. Topics covered include: New structural, high temperature, tool and precision steels; Cold-resistant, corrosion-resistant and radiation-resistant steels; Steels with rapid decline of induced properties; Alloys with shape memory effect; Bulk-amorphyzable metal alloys; Microcrystalline alloys; Nano materials and foam materials for medical use.
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