TY - JOUR
T1 - Intrinsic quasi-isotropic tensile properties of powder bed fused–laser beam TiB2/AlMgScZr composites
AU - Wu, Runze
AU - Wang, Xinlin
AU - Fu, Hongwang
AU - Yang, Zheyu
AU - Wu, Zhidong
AU - Li, Xuekai
AU - Gu, Qinming
AU - Wang, Shubang
AU - Zhao, Zhenan
N1 - Publisher Copyright:
© 2025
PY - 2025/11/5
Y1 - 2025/11/5
N2 - In the study, a 1.5 % TiB2 nanoparticle containing AlMgScZr composites was fabricated by the powder bed fused–laser beam (PBF-LB) at different scanning speeds, where near-fully dense, crack-free high-strength samples were obtained at a scanning speed of 500 mm/s. Systematic tensile testing reveals quasi-isotropic tensile properties: uniform elongation values are comparable between horizontal and building directions, while tensile strength differential remains 2 %. Microstructure characterization revealed that the printed samples exhibit columnar/equiaxed bimodal grain structures. The TiB2 particles in the matrix serve as nucleation sites engulfed by solidification fronts, enabling grain refinement. TiB2 further promotes the precipitation and thus increases the volume fraction of the Al3Sc and Al3Zr phase during PBF-LB fabrication. These Al3Sc and Al3Zr precipitates further promote the nucleation of fine equiaxed grains. Consequently, equiaxed grains obstruct columnar grain epitaxial growth, suppressing fiber texture development. The bimodal grain structure of weakly textured columnar grains and randomly oriented equiaxed grains contributes to the overall weak fiber texture and thus quasi-isotropic tensile properties of TiB2/AlMgScZr.
AB - In the study, a 1.5 % TiB2 nanoparticle containing AlMgScZr composites was fabricated by the powder bed fused–laser beam (PBF-LB) at different scanning speeds, where near-fully dense, crack-free high-strength samples were obtained at a scanning speed of 500 mm/s. Systematic tensile testing reveals quasi-isotropic tensile properties: uniform elongation values are comparable between horizontal and building directions, while tensile strength differential remains 2 %. Microstructure characterization revealed that the printed samples exhibit columnar/equiaxed bimodal grain structures. The TiB2 particles in the matrix serve as nucleation sites engulfed by solidification fronts, enabling grain refinement. TiB2 further promotes the precipitation and thus increases the volume fraction of the Al3Sc and Al3Zr phase during PBF-LB fabrication. These Al3Sc and Al3Zr precipitates further promote the nucleation of fine equiaxed grains. Consequently, equiaxed grains obstruct columnar grain epitaxial growth, suppressing fiber texture development. The bimodal grain structure of weakly textured columnar grains and randomly oriented equiaxed grains contributes to the overall weak fiber texture and thus quasi-isotropic tensile properties of TiB2/AlMgScZr.
KW - Anisotropy regulation
KW - Bimodal grain structure
KW - Powder bed fused–laser beam
KW - TiB/AlMgScZr composites
UR - https://www.scopus.com/pages/publications/105019068450
U2 - 10.1016/j.jallcom.2025.184411
DO - 10.1016/j.jallcom.2025.184411
M3 - 文章
AN - SCOPUS:105019068450
SN - 0925-8388
VL - 1044
JO - Journal of Alloys and Compounds
JF - Journal of Alloys and Compounds
M1 - 184411
ER -