首页> 外文期刊>Journal of Materials Processing Technology >Production-scale processing of a new intermetallic NiAl-Ta-Cr alloy for high-temperature application/Part I. Production of master alloy remelt ingots and investment casting of combustor liner model panels
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Production-scale processing of a new intermetallic NiAl-Ta-Cr alloy for high-temperature application/Part I. Production of master alloy remelt ingots and investment casting of combustor liner model panels

机译:用于高温应用的新型金属间NiAl-Ta-Cr合金的生产规模加工/第一部分。中间合金熔铸锭的生产和燃烧室衬板模型板的精铸

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摘要

Several master alloy remelt ingots of about 100 kg each with nominal composition 45 at. percent Ni, 45 at. percent Al, 7.5 at. percent Cr and 2.5 at. percent Ta were produced by vacuum induction melting. These ingots were used for a series of investment castings with variation of casting parameters in order to develop and optimise the investment casting process for this new intermetallic NiAl-based alloy. The microstructures of the remelt ingots and of various investment castings were characterised by light optical and scanning electron microscopy (SEM). The compositions of the constituent phases were determined by energy dispersive and wavelength dispersive analysis. The 0.2 percent yield stress, secondary creep rates and oxidation rates were determined and compared with those of materials produced on laboratory scale. Except of a decreased toughness of the production scale material the properties were otherwise comparable to those of the laboratory scale material. Though properties of the cast alloys are found not to be sensitively affected by impurities such as oxygen, carbon, iron, hafnium and zirconium, silicon was found to promote segregation during casting which is believed to result in embrittlement of the production scale material. Silicon contaminations could be avoided by usage of a ceramic-free cold-wall induction melting aggregate, but due to the coarse resulting microstructures this did not improve toughness of the production scale material.
机译:几个大约100 kg的母合金再熔锭,标称成分为45 at。镍百分比,45 at。铝含量为7.5 at。铬百分比和2.5 at。通过真空感应熔炼产生百分之五十的钽。这些铸锭用于一系列熔铸参数不同的熔模铸造,以开发和优化这种新型金属间NiAl基合金熔模铸造工艺。通过光学光学和扫描电子显微镜(SEM)对熔铸锭和各种熔模铸件的微观结构进行了表征。通过能量色散和波长色散分析确定组成相的组成。确定了0.2%的屈服应力,二次蠕变速率和氧化速率,并与实验室规模生产的材料进行了比较。除了生产规模的材料的韧性降低以外,其性能在其他方面与实验室规模的材料相当。尽管发现铸造合金的性能不受氧,碳,铁,ha和锆等杂质的敏感影响,但发现硅促进了铸造过程中的偏析,据信这导致了生产规模材料的脆化。可以通过使用无陶瓷冷壁感应熔融骨料来避免硅污染,但是由于所形成的粗糙的微观结构,这并不能提高生产规模材料的韧性。

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