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首页> 外文期刊>Journal of Spacecraft and Rockets >Development of Protective Coatings for High-Temperature Metallic Materials
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Development of Protective Coatings for High-Temperature Metallic Materials

机译:高温金属材料保护涂层的开发

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摘要

Metallic material systems with potential for high-temperature operations are critical for many land-based and space-based systems. Advanced alloys with improved elevated temperature properties and/or reduced densities offer improved structural efficiency and longer service life compared to more conventional alloys. However, in extreme operating environments, these alloys require coatings for environmental protection and thermal control. We discuss some results from a program to develop ultrathin, lightweight, protective coatings applied via sol-gel techniques for some emerging high-temperature alloys. The coatings were designed to reduce oxidation, increase emittance, and reduce the catalytic efficiency for recombination of dissociated hot-gas species for the candidate materials. The alloys considered in this study include PM1000 (an oxide dispersion strengthened Ni-based alloy), 602CA Ni-based alloy, and a gamma titanium aluminide alloy. Inconel 617, a Ni-based alloy, was included as a reference. Microstructural analysis and oxidation weight gain results indicated that the coatings significantly reduced oxidation damage during extended high-temperature exposures for these alloys. In addition, one coating system was shown to improve the emittance of Inconel 617. A substantial reduction in the recombination of atomic nitrogen and oxygen at the surface of Inconel 617 substrates in a hot flowing airstream was also observed.
机译:具有高温操作潜力的金属材料系统对于许多陆基和空基系统都是至关重要的。与更常规的合金相比,具有改善的高温性能和/或降低的密度的先进合金具有更高的结构效率和更长的使用寿命。但是,在极端的操作环境中,这些合金需要涂层以保护环境和控制温度。我们讨论了一项计划的一些结果,该计划旨在开发通过溶胶凝胶技术应用于某些新兴高温合金的超薄,轻质,保护性涂层。设计涂层的目的是减少氧化,增加发射率,并降低用于离解热气物质重组的候选材料的催化效率。本研究中考虑的合金包括PM1000(氧化物弥散强化的Ni基合金),602CA Ni基合金和伽马钛铝化物合金。镍基合金Inconel 617作为参考。显微组织分析和氧化增重结果表明,这些合金在长时间的高温暴露过程中,涂层显着降低了氧化损伤。此外,显示了一种涂层系统可提高Inconel 617的发射率。在热流动的气流中,Inconel 617基板表面的原子氮和氧的重组也显着减少。

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