Yoo Hyo-Sang, Kim Yong-Ho, Lee Seong-Hee, Son Hyeon-Taek
Automotive Components and Materials R&D Group, Korea Institute of Industrial Technology, 1110-9 Oryong-dong, Buk-gu, Gwangju, 61012, Republic of Korea.
Department of Materials Science and Engineering, Mokpo National University, Muan, 58554, Republic of Korea.
J Nanosci Nanotechnol. 2018 Sep 1;18(9):6249-6252. doi: 10.1166/jnn.2018.15638.
The microstructure and mechanical properties of as-extruded Al-0.1 wt%Si-0.2 wt%Fe- 0.4 wt%Cu-0.04 wt%Zr-xMn-xAlTiB (x = 1.0 wt%) alloys under various annealing processes were investigated and compared. After the as-cast billets were kept at 400 °C for 1 hr, hot extrusion was carried out with a reduction ratio of 38:1. In the case of the as-extruded Al-Si-Fe-Cu-Zr alloy at annealed at 620 °C, large equiaxed grain was observed. When the Mn content is 1.0 wt%, the phase exhibits a skeleton morphology, the phase formation in which Mn participated. Also, the volume fraction of the intermetallic compounds increased with Mn and AlTiB addition. For the Al-0.1Si-0.2Fe-0.4Cu-0.04Zr alloy with Mn and AlTiB addition from 1.0 wt%, the ultimate tensile strength increased from 100.47 to 119.41 to 110.49 MPa. The tensile strength of the as-extruded alloys improved with the addition of Mn and AlTiB due to the formation of Mn and AlTiB-containing intermetallic compounds.
研究并比较了挤压态Al-0.1 wt%Si-0.2 wt%Fe-0.4 wt%Cu-0.04 wt%Zr-xMn-xAlTiB(x = 1.0 wt%)合金在各种退火工艺下的微观结构和力学性能。铸态坯料在400℃保温1小时后,以38:1的压下率进行热挤压。对于在620℃退火的挤压态Al-Si-Fe-Cu-Zr合金,观察到粗大的等轴晶粒。当Mn含量为1.0 wt%时,该相呈现骨架形态,Mn参与了该相的形成。此外,金属间化合物的体积分数随Mn和AlTiB的添加而增加。对于添加了1.0 wt%的Mn和AlTiB的Al-0.1Si-0.2Fe-0.4Cu-0.04Zr合金,其极限抗拉强度从100.47 MPa提高到119.41 MPa,再提高到110.49 MPa。由于含Mn和AlTiB的金属间化合物的形成,挤压态合金的抗拉强度随Mn和AlTiB的添加而提高。