Zhao Zhang, Cheng Zhou, Fang-zhou Jin, Yong-feng Cai, Yi-fan Ni, Cheng-hao Fan, Dan Song
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During each stage of the 750 °C corrosion test, the oxygen content of the amorphous coating was significantly lower than that of the contrast coating (PS45 alloy coating), indicating a superior corrosion protection effect at high temperature. After 100 h of continuous testing, the corrosion mass gain of the amorphous coating was only 28.62% that of PS45 coating and 3.89% that of T12 steel substrate, indicating significantly depressed high-temperature corrosion kinetics. The excellent high-temperature corrosion resistance of Fe–Cr–Mo amorphous coating is primarily attributed to the stable Fe/Cr oxide film generated by the metastable state of the amorphous state, which serves as an excellent barrier. Furthermore, under the influence of heat in a high-temperature environment, the amorphous structure gradually transforms into a nanocrystalline structure. 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引用次数: 0
摘要
通过电弧喷涂制备了一种新型铁-铬-钼非晶涂层,这是一种用于电厂超超临界锅炉水墙保护的高温耐腐蚀材料。对该涂层的高温腐蚀行为进行了系统研究,并对其高温耐腐蚀性能进行了科学评估。结果表明,经 X 射线衍射和透射电子显微镜表征证实,Fe-Cr-Mo 非晶涂层的厚度约为 350 μm,表现出典型的非晶特性。在 750 °C 腐蚀试验的每个阶段,非晶态涂层的氧含量都明显低于对比涂层(PS45 合金涂层),这表明非晶态涂层在高温下具有优异的防腐效果。连续测试 100 小时后,非晶态涂层的腐蚀质量增量仅为 PS45 涂层的 28.62%,T12 钢基体的 3.89%,表明高温腐蚀动力学显著降低。Fe-Cr-Mo 非晶态涂层优异的耐高温腐蚀性能主要归功于非晶态的蜕变态产生的稳定的 Fe/Cr 氧化膜,它起到了很好的阻挡作用。此外,在高温环境的热影响下,非晶态结构会逐渐转变为纳米晶结构。相比之下,非晶态/纳米晶涂层的氧化膜热应力低,与涂层的附着力更强,抗开裂和抗剥落能力更强,因此可提供出色的持续保护。
High-temperature corrosion resistance of Fe–Cr–Mo amorphous coating for water wall protection of USC boiler
A novel Fe–Cr–Mo amorphous coating, a high-temperature corrosion-resistant material for water wall protection of power plant ultra-supercritical boilers, has been prepared via arc spraying. A systematic study was conducted to evaluate the high-temperature corrosion behavior of this coating, and its resistance to corrosion at high temperatures was scientifically assessed. The results indicate that the thickness of Fe–Cr–Mo amorphous coating is approximately 350 μm, exhibiting typical amorphous characteristics as confirmed by X-ray diffraction and transmission electron microscope characterization. During each stage of the 750 °C corrosion test, the oxygen content of the amorphous coating was significantly lower than that of the contrast coating (PS45 alloy coating), indicating a superior corrosion protection effect at high temperature. After 100 h of continuous testing, the corrosion mass gain of the amorphous coating was only 28.62% that of PS45 coating and 3.89% that of T12 steel substrate, indicating significantly depressed high-temperature corrosion kinetics. The excellent high-temperature corrosion resistance of Fe–Cr–Mo amorphous coating is primarily attributed to the stable Fe/Cr oxide film generated by the metastable state of the amorphous state, which serves as an excellent barrier. Furthermore, under the influence of heat in a high-temperature environment, the amorphous structure gradually transforms into a nanocrystalline structure. In contrast, the oxide film of the amorphous/nanocrystalline coating has low thermal stress, leading to better adhesion with the coating and resistance to cracking and peeling, thus providing excellent sustained protection.
期刊介绍:
Publishes critically reviewed original research of archival significance
Covers hydrometallurgy, pyrometallurgy, electrometallurgy, transport phenomena, process control, physical chemistry, solidification, mechanical working, solid state reactions, materials processing, and more
Includes welding & joining, surface treatment, mathematical modeling, corrosion, wear and abrasion
Journal of Iron and Steel Research International publishes original papers and occasional invited reviews on aspects of research and technology in the process metallurgy and metallic materials. Coverage emphasizes the relationships among the processing, structure and properties of metals, including advanced steel materials, superalloy, intermetallics, metallic functional materials, powder metallurgy, structural titanium alloy, composite steel materials, high entropy alloy, amorphous alloys, metallic nanomaterials, etc..