真空 ›› 2026, Vol. 63 ›› Issue (5): 1-11.doi: 10.13385/j.cnki.vacuum.2026.05.01
• 薄膜 • 下一篇
郑英杰1, 徐兴华1, 孙彬2, 魏枫2, 孙飞1, 蔺增1
ZHENG Yingjie1, XU Xinghua1, SUN Bin2, WEI Feng2, SUN Fei1, LIN Zeng1
摘要: 镍基高温合金因其优异的高温力学性能被广泛用于燃气轮机热端部件,但在950℃以上长期服役时易发生快速氧化而失效。本研究旨在利用电弧离子镀技术在IN925镍基合金基体上沉积NiCoCrAlY涂层,并系统评估基体和涂层在950℃ 和1 050℃空气中的等温氧化性能与机制。通过200 h氧化动力学测试及三维共聚焦显微镜、能谱分析、X射线衍射和扫描电子显微镜等表征测试方法进行分析。结果表明:涂层表面能快速形成连续致密且附着力良好的α-Al2O3保护膜,使950℃和1 050℃下的氧化速率分别较无涂层基体降低19.6%和21.9%;无涂层基体表面生成Cr2O3、NiCr2O4和TiO2等多相疏松氧化物,易剥落失效。因此,电弧离子镀制备的NiCoCrAlY涂层能显著提高IN925合金的高温抗氧化性能。
中图分类号: TG174.4
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