TY - JOUR
T1 - Laser powder bed fusion of Zr-modified Al-Cu-Mg alloy
T2 - Processability and elevated-temperature mechanical properties
AU - Wang, Yanfang
AU - Lin, Xin
AU - Zhao, Yufan
AU - Wang, Zihong
AU - Yu, Xiaobin
AU - Gao, Xuehao
AU - Huang, Weidong
N1 - Publisher Copyright:
© 2022
PY - 2023/2/10
Y1 - 2023/2/10
N2 - Zr modification is an effective method for improving hot-cracking resistance and elevated-temperature mechanical properties during laser powder bed fusion (L-PBF) of traditional medium and high strength wrought aluminum alloys. This study investigated the L-PBF processability and elevated-temperature mechanical properties of a Zr-modified 2024Al alloy. It was found that the hot-cracking susceptibility increased with the increased scanning speed, which was in reasonable agreement with the modified Rappaz–Drezet–Gremaud criterion. Furthermore, the primary L12-Al3Zr precipitates, which acted as efficient nucleation sites, precipitated at the fusion boundary of the melt pool, leading to the formation of a heterogeneous grain structure. The yield strength (YS) of the as-fabricated samples at 150, 250, and 350 °C was 363, 210, and 48 MPa, respectively. Despite the slight decrease to 360 MPa of the YS when tested at 150 °C, owing to the additional precipitate strengthening from the L12-Al3Zr precipitates, the YS achieved yield strengths of 253 and 69 MPa, an increase of 20.5% and 30.4%, when tested at 250 and 350 °C, respectively. The yield strengths in both the as-fabricated and T6-treated conditions tested at 150 and 250 °C were comparable to those of casting Al-Cu-Mg-Ag alloys and superior to those of traditionally heat-resistant 2219-T6 and 2618-T6 of Al-Cu alloys.
AB - Zr modification is an effective method for improving hot-cracking resistance and elevated-temperature mechanical properties during laser powder bed fusion (L-PBF) of traditional medium and high strength wrought aluminum alloys. This study investigated the L-PBF processability and elevated-temperature mechanical properties of a Zr-modified 2024Al alloy. It was found that the hot-cracking susceptibility increased with the increased scanning speed, which was in reasonable agreement with the modified Rappaz–Drezet–Gremaud criterion. Furthermore, the primary L12-Al3Zr precipitates, which acted as efficient nucleation sites, precipitated at the fusion boundary of the melt pool, leading to the formation of a heterogeneous grain structure. The yield strength (YS) of the as-fabricated samples at 150, 250, and 350 °C was 363, 210, and 48 MPa, respectively. Despite the slight decrease to 360 MPa of the YS when tested at 150 °C, owing to the additional precipitate strengthening from the L12-Al3Zr precipitates, the YS achieved yield strengths of 253 and 69 MPa, an increase of 20.5% and 30.4%, when tested at 250 and 350 °C, respectively. The yield strengths in both the as-fabricated and T6-treated conditions tested at 150 and 250 °C were comparable to those of casting Al-Cu-Mg-Ag alloys and superior to those of traditionally heat-resistant 2219-T6 and 2618-T6 of Al-Cu alloys.
KW - Al-Cu-Mg alloy
KW - Elevated-temperature mechanical property
KW - Laser powder bed fusion
KW - Processability
KW - Zirconium
UR - http://www.scopus.com/inward/record.url?scp=85137056926&partnerID=8YFLogxK
U2 - 10.1016/j.jmst.2022.07.027
DO - 10.1016/j.jmst.2022.07.027
M3 - 文章
AN - SCOPUS:85137056926
SN - 1005-0302
VL - 136
SP - 223
EP - 235
JO - Journal of Materials Science and Technology
JF - Journal of Materials Science and Technology
ER -