TY - JOUR
T1 - Tailoring microstructure in functionally graded NiTi alloys using in-situ alloying directed energy deposition
AU - Dai, Guoqing
AU - Min, Jin
AU - Sun, Zhonggang
AU - Guo, Yanhua
AU - Bhowmik, Ayan
AU - Shinjo, Junji
AU - Lu, Jinzhong
AU - Panwisawas, Chinnapat
N1 - Publisher Copyright:
© 2025
PY - 2025/7
Y1 - 2025/7
N2 - NiTi alloys fabricated via additive manufacturing (AM) often suffer from coarse grains, brittle intermetallic phase accumulation, and limited control over phase transformation behavior, resulting in compromised performance and impeded functional applications. To address this challenge, a generalisable strategy for intermetallic modulation and functional gradient design has been proposed and validated through directed energy deposition (DED). By employing multiple deposition modes (Mixed NiTi, Graded Ti/Ni, and Graded Ti/NiTi), tailored microstructure gradients were achieved. This approach enabled spatial control over the formation of key intermetallics, resulting in simultaneous enhancement of martensitic transformation behavior and mechanical performance (nanohardness, compressive strength). A coupled simulation-experimental analysis revealed universal mechanisms of temperature evolution and solute transport in melt pools, which underlie intermetallic development during AM. The findings contribute a broadly applicable methodology for designing gradient architectures in metallic systems, offering new avenues for tailoring functional and structural performance.
AB - NiTi alloys fabricated via additive manufacturing (AM) often suffer from coarse grains, brittle intermetallic phase accumulation, and limited control over phase transformation behavior, resulting in compromised performance and impeded functional applications. To address this challenge, a generalisable strategy for intermetallic modulation and functional gradient design has been proposed and validated through directed energy deposition (DED). By employing multiple deposition modes (Mixed NiTi, Graded Ti/Ni, and Graded Ti/NiTi), tailored microstructure gradients were achieved. This approach enabled spatial control over the formation of key intermetallics, resulting in simultaneous enhancement of martensitic transformation behavior and mechanical performance (nanohardness, compressive strength). A coupled simulation-experimental analysis revealed universal mechanisms of temperature evolution and solute transport in melt pools, which underlie intermetallic development during AM. The findings contribute a broadly applicable methodology for designing gradient architectures in metallic systems, offering new avenues for tailoring functional and structural performance.
KW - Directed Energy Deposition
KW - Graded functionality
KW - Gradient microstructure
KW - NiTi alloys
UR - http://www.scopus.com/inward/record.url?scp=105004812357&partnerID=8YFLogxK
U2 - 10.1016/j.jmatprotec.2025.118884
DO - 10.1016/j.jmatprotec.2025.118884
M3 - 文章
AN - SCOPUS:105004812357
SN - 0924-0136
VL - 341
JO - Journal of Materials Processing Technology
JF - Journal of Materials Processing Technology
M1 - 118884
ER -