Acta Metallurgica Sinica (English Letters) ›› 2024, Vol. 37 ›› Issue (11): 1907-1920.DOI: 10.1007/s40195-024-01749-2

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Influence of Substituting W for Nb or Hf on Solidification Behavior of a Typical Co-Ni-Al-W Based Superalloy

Huifang Zhang1,2, Jun Xie1(), Qi Li1(), Hao Wu1, Jinjiang Yu1, Hongyu Chai1, Fengjiang Zhang1, Jinguo Li1, Yizhou Zhou1, Xiaofeng Sun1   

  1. 1Shi-Changxu Innovation Center for Advanced Materials, Institute of Metal Research, Chinese Academy of Sciences, Shenyang, 110016, China
    2School of Materials Science and Engineering, University of Science and Technology of China, Hefei, 230026, China

Abstract:

Understanding the effects of various elements on solidification behavior is crucial for designing the composition of γ’-strengthened Co-based superalloys and is fundamental for controlling the as-cast structure and formulating subsequent heat treatment processes. This research investigated the effects of replacing 1 at.% W with 1 at.% Nb or Hf elements on the solidification behavior of Co-Ni-Al-W-based superalloys. The findings revealed that substituting W with Nb and Hf resulted in a notable decrease in both the solidus temperature (TS) and liquidus temperature (TL). Specifically, the substitution of W with Nb lowered TS from 1353 °C to 1332 °C and TL from 1383 °C to 1368 °C, while replacing W with Hf decreased TS from 1353 °C to 1330 °C and TL from 1383 °C to 1366 °C. Moreover, both Nb and Hf element are positive segregation element, while Nb decreases and Hf increases W segregation, respectively. During the final solidification stage, the substitution of W with Nb resulted in the formation of eutectic (γ +  γ’), Co3Ta, and a small amount of μ-Co7Nb6 phase, while replacing W with Hf resulted in the formation of the Laves phase and β-CoAl phase. The solidification paths of the three alloys were confirmed based on the result of differential scanning calorimetry, isothermal solidification experiment and Thermo-calc simulation. These results offer a theoretical basis for the composition design and optimization of heat treatment processes for Co-Ni-Al-W-based superalloys.

Key words: Co-Ni-Al-W-based superalloys, Solidification microstructure, Segregation, Solidification path