TY - JOUR
T1 - Cooling rate and solution temperature dependent γ' coarsening mechanism in DZ125 Ni-based superalloy
AU - Boonlert, Natthanicha
AU - Wang, Zhaowei
AU - Chen, Kai
AU - Shen, Hao
AU - Zhang, Peng
AU - Narayan, R. L.
N1 - Publisher Copyright:
© 2025 Elsevier Inc.
PY - 2025/10
Y1 - 2025/10
N2 - The effect of solution temperature and cooling rate on the microstructure and coarsening behavior of γ' precipitates, as well as the hardness of DZ125 Ni-based superalloy is investigated. Microstructural analysis reveals distinct differences in γ' precipitate morphology between the dendrite cores (DCs) and interdendritic regions (IRs). At lower solution temperatures (1220 °C), γ'-particles do not completely dissolve, leading to the co-existence of primary γ' (∼540 nm) and smaller spherical secondary γ' (∼50 nm) precipitates in IRs, while higher temperatures (1240–1260 °C) leads to coarser and more cuboidal secondary γ' particles. Water quenching, produces finer γ' particles (∼158 nm) near the surface whereas slower cooling methods like furnace cooling results in larger particles due to extended diffusion times. Both the γ' area fraction, Aγ’, and the hardness increases with increasing solution temperature and depth. While furnace cooled DZ125 exhibits the highest hardness of ∼470–480 HV, water-quenched samples have the lowest hardness of ∼430–440 HV and exhibit a gradient in the hardness along the cross-section. A clear correlation between Aγ’ and Vickers hardness is observed and the solution treatment at 1240 °C followed by furnace cooling leads to the highest enhancement in hardness. γ' coarsening mechanisms are discussed by considering the fits of Lifshitz-Slyozov-Wagner (LSW) model, also known as matrix-diffusion controlled model, and trans-interface diffusion-controlled (TIDC) model. Goodness-of-fit measures reveal that the coarsening kinetics undergoes a transition from LSW near the surface to TIDC in the bulk. These results help in developing heat treatment strategies for directionally solidified Ni-based superalloys.
AB - The effect of solution temperature and cooling rate on the microstructure and coarsening behavior of γ' precipitates, as well as the hardness of DZ125 Ni-based superalloy is investigated. Microstructural analysis reveals distinct differences in γ' precipitate morphology between the dendrite cores (DCs) and interdendritic regions (IRs). At lower solution temperatures (1220 °C), γ'-particles do not completely dissolve, leading to the co-existence of primary γ' (∼540 nm) and smaller spherical secondary γ' (∼50 nm) precipitates in IRs, while higher temperatures (1240–1260 °C) leads to coarser and more cuboidal secondary γ' particles. Water quenching, produces finer γ' particles (∼158 nm) near the surface whereas slower cooling methods like furnace cooling results in larger particles due to extended diffusion times. Both the γ' area fraction, Aγ’, and the hardness increases with increasing solution temperature and depth. While furnace cooled DZ125 exhibits the highest hardness of ∼470–480 HV, water-quenched samples have the lowest hardness of ∼430–440 HV and exhibit a gradient in the hardness along the cross-section. A clear correlation between Aγ’ and Vickers hardness is observed and the solution treatment at 1240 °C followed by furnace cooling leads to the highest enhancement in hardness. γ' coarsening mechanisms are discussed by considering the fits of Lifshitz-Slyozov-Wagner (LSW) model, also known as matrix-diffusion controlled model, and trans-interface diffusion-controlled (TIDC) model. Goodness-of-fit measures reveal that the coarsening kinetics undergoes a transition from LSW near the surface to TIDC in the bulk. These results help in developing heat treatment strategies for directionally solidified Ni-based superalloys.
KW - Cooling rate effect
KW - LSW model
KW - Microstructural evolution
KW - Ni-based superalloy
KW - Solution heat treatment
KW - TIDC model
KW - γ′ coarsening
UR - https://www.scopus.com/pages/publications/105012105290
U2 - 10.1016/j.matchar.2025.115429
DO - 10.1016/j.matchar.2025.115429
M3 - 文章
AN - SCOPUS:105012105290
SN - 1044-5803
VL - 228
JO - Materials Characterization
JF - Materials Characterization
M1 - 115429
ER -