TY - JOUR
T1 - An analytical model for secondary phase dissolution kinetics
AU - Zuo, Qiang
AU - Liu, Feng
AU - Wang, Lei
AU - Chen, Chang Feng
AU - Zhang, Zhong Hua
PY - 2014/4
Y1 - 2014/4
N2 - An analytical model for dissolution kinetics of secondary phase particles upon isothermal annealing has been proposed. Considering the interactions of solute diffusion fields in front of the secondary phase/matrix interface upon dissolution, a Johnson-Mehl-Avrami type equation, subjected to necessary modification, was derived, in combination with a classic dissolution model for single-particle system. Compared with the semiempirical dissolution models, which are used to fit the experimental results and phase-field method simulation, the current model follows an analogous form, but with the time-dependent kinetic parameters. Distinct from the model fitting work published recently, the current model is derived from the diffusion-controlled transformation theory, while the modeling quality is guaranteed by the physically realistic model parameters. On this basis, the current model calculation leads to a clear relationship between the secondary phase volume fraction and the time. Accordingly, model predictions for isothermal θ′ dissolution in Al-3.0wt%-Cu alloy and silicon dissolution in Al-0.8wt%-Si alloy were performed; good agreement with the published experimental data has been achieved.
AB - An analytical model for dissolution kinetics of secondary phase particles upon isothermal annealing has been proposed. Considering the interactions of solute diffusion fields in front of the secondary phase/matrix interface upon dissolution, a Johnson-Mehl-Avrami type equation, subjected to necessary modification, was derived, in combination with a classic dissolution model for single-particle system. Compared with the semiempirical dissolution models, which are used to fit the experimental results and phase-field method simulation, the current model follows an analogous form, but with the time-dependent kinetic parameters. Distinct from the model fitting work published recently, the current model is derived from the diffusion-controlled transformation theory, while the modeling quality is guaranteed by the physically realistic model parameters. On this basis, the current model calculation leads to a clear relationship between the secondary phase volume fraction and the time. Accordingly, model predictions for isothermal θ′ dissolution in Al-3.0wt%-Cu alloy and silicon dissolution in Al-0.8wt%-Si alloy were performed; good agreement with the published experimental data has been achieved.
UR - http://www.scopus.com/inward/record.url?scp=84895059105&partnerID=8YFLogxK
U2 - 10.1007/s10853-013-8009-y
DO - 10.1007/s10853-013-8009-y
M3 - 文章
AN - SCOPUS:84895059105
SN - 0022-2461
VL - 49
SP - 3066
EP - 3079
JO - Journal of Materials Science
JF - Journal of Materials Science
IS - 8
ER -