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Fabrication and Characterization of the Newly Developed Superalloys Based on Inconel 740

机译:基于Inconel 740的新型高温合金的制备与表征

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摘要

The chemical composition of standard Inconel 740 superalloy was modified by changes in the Al/Ti ratio (0.7, 1.5, 3.4) and addition of Ta (2.0, 3.0, 4.0%). Remelted Inconel 740 (A0) and nine variants with various chemical compositions were fabricated by lost-wax casting. The microstructure, microsegregation, phase transformation temperatures, thermal expansion coefficients and hardness of the superalloys were investigated by scanning electron microscopy, energy dispersive X-ray spectroscopy, differential scanning calorimetry, dilatometry and Vickers measurements. Typical dendritic microstructure was revealed with microsegregation of the alloying elements. Segregation coefficient k for Ti, Nb and Ta did not exceed unity, and so precipitates enriched mainly in these elements were found in interdendritic spaces. The Nb-rich blocky precipitates, MC carbides, MN nitrides, oxides, and fine γ’ was in all modified castings. Presence of other microstructural features, such as Ti-rich needles, eutectic γ-γ’ islands, small Al-rich and Cr-rich precipitates depended on the casting composition. The lowest solidus and liquidus temperatures were observed in superalloys with a high Al/Ti ratio. Consequently, in A7–A9 variants, the solidification range did not exceed 100 °C. In the A0 variant the difference between liquidus and solidus temperature was 138 °C. Hardness of all modified superalloys was at least 50% higher than for the remelted Inconel 740 (209 HV10).
机译:通过更改Al / Ti比(0.7、1.5、3.4)和添加Ta(2.0、3.0、4.0%),可以更改标准Inconel 740高温合金的化学成分。通过失蜡铸造制造了重熔的Inconel 740(A0)和九种具有不同化学成分的变体。通过扫描电子显微镜,能量色散X射线光谱,差示扫描量热法,膨胀计和维氏(Vickers)测量研究了高温合金的微观结构,微观偏析,相变温度,热膨胀系数和硬度。合金元素的微偏析揭示了典型的树枝状微观结构。 Ti,Nb和Ta的偏析系数k不超过1,因此在树突间空间中发现了主要富集在这些元素中的析出物。所有改性铸件中都富含Nb的块状沉淀,MC碳化物,MN氮化物,氧化物和细γ′。是否存在其他微观结构特征,例如富钛针,共晶γ-γ′岛,富铝和富铬的小析出物取决于铸件成分。在具有高Al / Ti比的高温合金中,观察到最低的固相线和液相线温度。因此,在A7–A9变型中,凝固范围不超过100°C。在A0变体中,液相线和固相线温度之间的差异为138°C。与改性的Inconel 740(209 HV10)相比,所有改性超合金的硬度至少高出50%。

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