TY - JOUR
T1 - Research on microstructure and mechanical properties of multi-particles synergistically reinforced aluminum matrix composites by laser additive manufacturing
AU - Li, Yu
AU - Zhang, Chenghang
AU - Cheng, Xu
AU - Sun, Yiliu
AU - Shen, Chunjie
N1 - Publisher Copyright:
© 2025 Elsevier Ltd
PY - 2025/10
Y1 - 2025/10
N2 - With the increasing demand for lightweight, high-strength, and durable structural components in aerospace and automotive industries, particle-reinforced aluminum matrix composites (AMMCs) have attracted extensive attention due to their low density, high specific strength, and excellent wear resistance. In this study, aluminum composites with 0.5 wt% TiN +0.5 wt% Si3N4 and 1 wt% TiN +1 wt% Si3N4 reinforcements were fabricated using selective laser melting (SLM) to achieve improved performance, leveraging the strengthening effects of different reinforced particles. During the high-temperature SLM process, TiN particles melted and released Ti atoms, which facilitated the formation of Al3(Ti, Sc, Zr) phase. Compared to the as-deposited aluminum alloy, the composites exhibited enhanced tensile strength of 415.42 MPa (0.5 wt% TiN + 0.5 wt% Si3N4) and 446.63 MPa (1 wt% TiN + 1 wt% Si3N4). The enhanced strength is primarily attributed to grain refinement and precipitation hardening induced by the reinforced particles.
AB - With the increasing demand for lightweight, high-strength, and durable structural components in aerospace and automotive industries, particle-reinforced aluminum matrix composites (AMMCs) have attracted extensive attention due to their low density, high specific strength, and excellent wear resistance. In this study, aluminum composites with 0.5 wt% TiN +0.5 wt% Si3N4 and 1 wt% TiN +1 wt% Si3N4 reinforcements were fabricated using selective laser melting (SLM) to achieve improved performance, leveraging the strengthening effects of different reinforced particles. During the high-temperature SLM process, TiN particles melted and released Ti atoms, which facilitated the formation of Al3(Ti, Sc, Zr) phase. Compared to the as-deposited aluminum alloy, the composites exhibited enhanced tensile strength of 415.42 MPa (0.5 wt% TiN + 0.5 wt% Si3N4) and 446.63 MPa (1 wt% TiN + 1 wt% Si3N4). The enhanced strength is primarily attributed to grain refinement and precipitation hardening induced by the reinforced particles.
KW - Additive manufacturing
KW - Aluminum composite
KW - Mechanical property
KW - Microstructure
UR - https://www.scopus.com/pages/publications/105008434631
U2 - 10.1016/j.coco.2025.102508
DO - 10.1016/j.coco.2025.102508
M3 - 文章
AN - SCOPUS:105008434631
SN - 2452-2139
VL - 58
JO - Composites Communications
JF - Composites Communications
M1 - 102508
ER -