TY - JOUR
T1 - Achieving high strength in Ti65 alloys via TiB2 addition during LDED and simulation of β grain evolution
AU - Liu, Huan
AU - Ma, Panpan
AU - Li, Lian
AU - Li, Miaoquan
N1 - Publisher Copyright:
© 2026 Chinese Materials Research Society.
PY - 2026/6
Y1 - 2026/6
N2 - In this work, the Ti65 matrix composite by adding TiB2 reinforcement (TMC1) is fabricated via Laser directed energy deposition (LDED). The yield strength and ultimate tensile strength of TMC1 are 1150.5 MPa and 1215.5 MPa, representing increases of 20.2% and 12.0% compared with the Ti65 alloy. The improved yield strength is mainly derived from grain refinement strengthening with a contribution of 160 MPa. The grain evolution model for TMC1 in LDED is established by incorporating the thermo-fluid flow (TFF) model for powder melting and solidification process. The model reveals the different stage effect of TiB2 reinforcements, in which solute boron modulates the nucleation and growth of β grains within the solid–liquid coexistence region, while TiBw suppress β grain coarsening via the grain boundary pinning effect in the solid-phase region. During multi-layer deposition, boron in TMC1 promotes an early CET. The small equiaxed grains retained after remelting act as nucleation sites for the subsequent deposited layer, effectively suppressing the cross-layer epitaxial growth of columnar grains. Additionally, the misorientation angle significantly influences the grain boundary migration of high-angle grain boundaries (HAGBs) and low-angle grain boundaries (LAGBs) of TMC1 in the solid phase region.
AB - In this work, the Ti65 matrix composite by adding TiB2 reinforcement (TMC1) is fabricated via Laser directed energy deposition (LDED). The yield strength and ultimate tensile strength of TMC1 are 1150.5 MPa and 1215.5 MPa, representing increases of 20.2% and 12.0% compared with the Ti65 alloy. The improved yield strength is mainly derived from grain refinement strengthening with a contribution of 160 MPa. The grain evolution model for TMC1 in LDED is established by incorporating the thermo-fluid flow (TFF) model for powder melting and solidification process. The model reveals the different stage effect of TiB2 reinforcements, in which solute boron modulates the nucleation and growth of β grains within the solid–liquid coexistence region, while TiBw suppress β grain coarsening via the grain boundary pinning effect in the solid-phase region. During multi-layer deposition, boron in TMC1 promotes an early CET. The small equiaxed grains retained after remelting act as nucleation sites for the subsequent deposited layer, effectively suppressing the cross-layer epitaxial growth of columnar grains. Additionally, the misorientation angle significantly influences the grain boundary migration of high-angle grain boundaries (HAGBs) and low-angle grain boundaries (LAGBs) of TMC1 in the solid phase region.
KW - Grain evolution
KW - Heat and mass transfer
KW - Laser directed energy deposition
KW - Multiphysics model
KW - Titanium matrix composites
UR - https://www.scopus.com/pages/publications/105041638473
U2 - 10.1016/j.pnsc.2026.05.011
DO - 10.1016/j.pnsc.2026.05.011
M3 - 文章
AN - SCOPUS:105041638473
SN - 1002-0071
VL - 36
SP - 662
EP - 685
JO - Progress in Natural Science: Materials International
JF - Progress in Natural Science: Materials International
IS - 3
ER -