Abstract The performance of cast Co-based superalloys is strongly influenced by the nature, stability, and distribution of carbide phases, which depend on C and Si content. This study examines the effect of C (0.25, 0.5 wt pct) and Si (1, 4 wt pct) on the microstructure and tensile behavior of a cast Co-based superalloy. As-cast microstructures were dominated by M 23 C 6 in low-Si alloys and M 12 C in high-Si alloys, with χ phase formed in the low-C, high-Si alloy. Thermal exposures at 800 °C and 1000 °C (100 h) promoted carbide transformation and intragranular precipitation, whereas 1200 °C (50 h) accelerated transformation and coarsening. At room temperature, high-Si contents increased yield strength but significantly reduced ductility, with crack susceptibility increasing from M 12 C to M 23 C 6 to χ . Embrittlement was exacerbated after 800 °C aging due to needle-like intragranular σ and M 12 C precipitation in high-Si alloys. Furthermore, 1000 °C tensile testing of as-cast alloys revealed a performance inversion: the M 23 C 6 -reinforced low-Si alloy achieved superior strength (UTS ~ 196 MPa) compared to high-Si variants. These findings establish mechanistic links between chemistry, carbide evolution, and tensile response, underscoring the need to limit Si and balancing C to optimize ductility and strength in Co-based superalloys.
Pek et al. (Wed,) studied this question.