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首页> 外文期刊>Intermetallics >The effects of ultrasonic nanocrystal surface modification (UNSM) on pack aluminizing for the fabrication of Pt-modified aluminide coatings at low temperatures
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The effects of ultrasonic nanocrystal surface modification (UNSM) on pack aluminizing for the fabrication of Pt-modified aluminide coatings at low temperatures

机译:超声纳米晶体表面改性(UNSM)对在低温下制备Pt改性铝化物涂层的包装铝化的影响

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摘要

An 8—9 μm thick Pt layer was coated on a superalloy and transformed to a Ni-Pt alloy layer by the interdiffusion of Ni and Pt at 1050 °C for 3 h. The surface of the Ni—Pt alloy layer was pack aluminized to form a Pt-modified aluminide coating. Ultrasonic nanocrystal surface modification (UNSM) was applied to the alloy layer prior to pack aluminizing. The effects of UNSM on Pt-modified aluminide coatings fabricated at 750,850,950, and 1050 °C were studied. The treated Ni—Pt alloy layers had finer grain sizes than the untreated specimens. In addition, UNSM made the grain size of the Ni—Pt alloy finer and reduced the surface roughness. During pack aluminizing, the Pt-modified aluminide coatings fabricated following UNSM uptook more Al and were thicker than the untreated Pt-modified aluminide coatings at the various temperatures (750, 850, 950, and 1050 °C). The untreated Pt-modified aluminide coatings with pack aluminizing performed at 750 and 850 °C were composed of only a two-phase (NiAl + PtAl_2) layer, due to insufficient diffusion of Pt at the lower temperatures. However, two-phase and one-phase (NiAl) layers were obtained in the treated Pt-modified aluminide coatings which were pack-aluminized at 750, 850, 950, and 1050 °C, due to the diffusion of Pt through the greater amount of grain boundaries and increased volume generated by UNSM before the pack aluminizing. Additionally, the treated coatings had smoother surfaces even after the pack aluminizing. During cyclic oxidation at 1150 °C for 1000 h, the treated Pt-modified aluminide coatings aluminized at relatively low temperatures (750 and 850 °C) showed better cyclic oxidation resistance than the untreated Pt-modified aluminide coating aluminized at 1050 °C
机译:通过在1050°C下将镍和铂相互扩散3 h,将8–9μm厚的铂层涂覆在高温合金上,并转变成镍铂合金层。将Ni-Pt合金层的表面填充铝,以形成Pt改性的铝化物涂层。在包装镀铝之前,对合金层进行超声波纳米晶体表面改性(UNSM)。研究了UNSM对在750,850,950和1050°C下制造的Pt改性铝化物涂层的影响。经过处理的Ni-Pt合金层的晶粒尺寸比未经处理的试样细。此外,UNSM使Ni-Pt合金的晶粒尺寸更细,并降低了表面粗糙度。在包装镀铝过程中,在各种温度(750、850、950和1050°C)下,按照UNSM制得的Pt改性铝化物涂层吸收的Al都比未处理的Pt改性铝化物涂层还要厚。由于在较低温度下Pt的扩散不充分,因此在750和850°C下进行了渗铝的未处理Pt改性铝化物涂层仅由两相(NiAl + PtAl_2)层组成。但是,在经过处理的Pt改性的铝化物涂层中获得了两相和一相(NiAl)层,这是由于Pt的扩散量较大,在750、850、950和1050°C下进行了铝包装包装镀铝之前,UNSM产生的晶界和体积增加。另外,即使在包装渗铝后,处理过的涂层也具有较光滑的表面。在1150°C的条件下进行1000小时的循环氧化期间,与在1050°C的条件下进行镀铝处理的未经处理的Pt改性的铝化物涂层相比,在相对较低的温度(750和850°C)下镀铝的经过处理的Pt改性的铝化物涂层表现出更好的耐循环氧化性

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