TY - JOUR
T1 - Selective laser melting of TiB2/AlSi10Mg composite
T2 - Processability, microstructure and fracture behavior
AU - Feng, Zhe
AU - Tan, Hua
AU - Fang, Yanbo
AU - Lin, Xin
AU - Huang, Weidong
N1 - Publisher Copyright:
© 2021 Elsevier B.V.
PY - 2022/1
Y1 - 2022/1
N2 - Recently aluminum matrix composites (AMCs) manufactured by selective laser melting (SLM) have attracted extensive attention in the lightweight application fields. In this work, pre-alloyed 6.5 wt.% TiB2/AlSi10Mg composite powder was initially densified via SLM. The result indicated that the material had a wide processing window, and the fully dense bulked samples were successfully fabricated when the laser volumetric energy density is 50–70 J/mm3. We concluded that the morphology, size, and distribution of TiB2 particles in the as-deposited condition were generally consistent with those of the powder. The fine equiaxed microstructures without apparent anisotropy were remarkably realized. Therefore, a superior combination of excellent tensile strength and elongation was evident in the horizontal (∼536.9 MPa and ∼16.5 %) and vertical (∼517.3 MPa and ∼15.4 %) directions due to the systematic processing optimization, accompany with the strong work hardening capability. Its tensile properties are higher than that of the reported SLM-ed matrix alloy and other particle-reinforced Al-Si composites. Besides, the fracture behaviors were complicated, and the crack propagation paths were affected not only by the defect and eutectic Al-Si of the molten pool boundary (MPB) but also by the homogeneously distributed TiB2 particles. This study is expected to establish an important guiding significance for the practical engineering application of SLM-ed in-suit TiB2/AlSi10Mg composite.
AB - Recently aluminum matrix composites (AMCs) manufactured by selective laser melting (SLM) have attracted extensive attention in the lightweight application fields. In this work, pre-alloyed 6.5 wt.% TiB2/AlSi10Mg composite powder was initially densified via SLM. The result indicated that the material had a wide processing window, and the fully dense bulked samples were successfully fabricated when the laser volumetric energy density is 50–70 J/mm3. We concluded that the morphology, size, and distribution of TiB2 particles in the as-deposited condition were generally consistent with those of the powder. The fine equiaxed microstructures without apparent anisotropy were remarkably realized. Therefore, a superior combination of excellent tensile strength and elongation was evident in the horizontal (∼536.9 MPa and ∼16.5 %) and vertical (∼517.3 MPa and ∼15.4 %) directions due to the systematic processing optimization, accompany with the strong work hardening capability. Its tensile properties are higher than that of the reported SLM-ed matrix alloy and other particle-reinforced Al-Si composites. Besides, the fracture behaviors were complicated, and the crack propagation paths were affected not only by the defect and eutectic Al-Si of the molten pool boundary (MPB) but also by the homogeneously distributed TiB2 particles. This study is expected to establish an important guiding significance for the practical engineering application of SLM-ed in-suit TiB2/AlSi10Mg composite.
KW - Fracture behavior
KW - Microstructure
KW - Processability
KW - Selective laser melting
KW - TiB/AlSi10Mg composite
UR - http://www.scopus.com/inward/record.url?scp=85116574950&partnerID=8YFLogxK
U2 - 10.1016/j.jmatprotec.2021.117386
DO - 10.1016/j.jmatprotec.2021.117386
M3 - 文章
AN - SCOPUS:85116574950
SN - 0924-0136
VL - 299
JO - Journal of Materials Processing Technology
JF - Journal of Materials Processing Technology
M1 - 117386
ER -