TY - JOUR
T1 - Thermo-kinetic connectivity by integrating thermo-kinetic correlation and generalized stability
AU - He, Yuqing
AU - Song, Shaojie
AU - Du, Jinglian
AU - Peng, Haoran
AU - Ding, Zhigang
AU - Hou, Huaiyu
AU - Huang, Linke
AU - Liu, Yongchang
AU - Liu, Feng
N1 - Publisher Copyright:
© 2022
PY - 2022/11/10
Y1 - 2022/11/10
N2 - Designing structured materials with optimized mechanical properties generally focuses on engineering microstructures, which are closely determined by the processing routes, such as phase transformations (PTs) and plastic deformations (PDs). Both PTs and PDs follow inherent trade-off relation between thermodynamic driving force ΔG and kinetic energy barrier Q, i.e., so-called thermo-kinetic correlation. By analyzing nucleation and growth and proposing a conception of negative driving force integrating strain energy, interface energy and any kind of energy that equivalently inhibits the PT itself, ΔGS, unified expressions for the thermo-kinetic correlation and generalized stability (GS) were derived for three kinds of PTs, i.e., diffusive PTs with simultaneously decreased ΔG and increased Q, diffusive PTs with simultaneously increased ΔG and decreased Q, and displacive PTs with simultaneously increased ΔG and decreased Q. This leads to so-called thermo-kinetic connectivity by integrating the thermo-kinetic correlation and the GS, where, by application in typical PTs, it was clearly shown, a criterion of high ΔG-high GS can be predicted by modulating chemical driving force, negative driving force and kinetic energy barrier for diffusion or nucleation. Following thermo-kinetic connectivity, analogous procedure for dislocation evolution upon PDs was performed, and materials design in terms of the high ΔG-high GS criterion was discussed and prospected.
AB - Designing structured materials with optimized mechanical properties generally focuses on engineering microstructures, which are closely determined by the processing routes, such as phase transformations (PTs) and plastic deformations (PDs). Both PTs and PDs follow inherent trade-off relation between thermodynamic driving force ΔG and kinetic energy barrier Q, i.e., so-called thermo-kinetic correlation. By analyzing nucleation and growth and proposing a conception of negative driving force integrating strain energy, interface energy and any kind of energy that equivalently inhibits the PT itself, ΔGS, unified expressions for the thermo-kinetic correlation and generalized stability (GS) were derived for three kinds of PTs, i.e., diffusive PTs with simultaneously decreased ΔG and increased Q, diffusive PTs with simultaneously increased ΔG and decreased Q, and displacive PTs with simultaneously increased ΔG and decreased Q. This leads to so-called thermo-kinetic connectivity by integrating the thermo-kinetic correlation and the GS, where, by application in typical PTs, it was clearly shown, a criterion of high ΔG-high GS can be predicted by modulating chemical driving force, negative driving force and kinetic energy barrier for diffusion or nucleation. Following thermo-kinetic connectivity, analogous procedure for dislocation evolution upon PDs was performed, and materials design in terms of the high ΔG-high GS criterion was discussed and prospected.
KW - Generalized stability
KW - Negative driving force
KW - Thermo-kinetic connectivity
KW - Thermo-kinetic correlation
UR - http://www.scopus.com/inward/record.url?scp=85129976770&partnerID=8YFLogxK
U2 - 10.1016/j.jmst.2022.04.008
DO - 10.1016/j.jmst.2022.04.008
M3 - 文章
AN - SCOPUS:85129976770
SN - 1005-0302
VL - 127
SP - 225
EP - 235
JO - Journal of Materials Science and Technology
JF - Journal of Materials Science and Technology
ER -