Ahn Su-Seong, Pathan Sharief, Koo Jar-Myung, Baeg Chang-Hyun, Jeong Chan-Uk, Son Hyoen-Taek, Kim Yong-Ho, Lee Kap-Ho, Hong Soon-Jik
Division of Advanced Materials Engineering, Kongju National University, Cheonan-si 331-717, Korea.
Dongyang A.K Korea Co. Ltd., 3rd plant/R&D center 70, Wonhapgang 1-gil, Yeondong-myeon, Sejong 30067, Korea.
Materials (Basel). 2018 Nov 1;11(11):2150. doi: 10.3390/ma11112150.
In this research, various processing conditions were implemented to enhance the mechanical properties of Al-Si alloys. The silicon content was varied from hypoeutectic (Si-10 wt.%) to eutectic (Si-12.6 wt.%) and hypereutectic (Si-14 wt.%) for the preparation of Al-XSi-3Cu-0.5Fe-0.6 Mg (X = 10⁻14%) alloys using die casting. Subsequently, these alloys were hot-extruded with an optimum extrusion ratio (17:1) at 400 °C to match the output extruded bar to the compressor size. An analysis of the microstructural features along with a chemical compositional analysis were carried out using scanning electron microscope along with energy dispersive X-ray spectroscopy and transmission electron microscope. The SEM micrographs of the extruded samples displayed cracks in primary Si, and the intermetallic (β-Al₅FeSi) phase was fragmented accordingly. In addition, the silicon phase was homogenously distributed, and the size remained constant. The mechanical properties of the extruded samples were enhanced by the increase of silicon content, and consequently the ductility decreased. By implementing proper T6 heat treatment parameters, coherent Al₂Cu phases were formed in the Al matrix, and the Si phase was gradually increased along with the silicon content. Therefore, high tensile strength was achieved, reaching values for the Al-XSi-3Cu-0.5Fe-0.6Mg (X = 10⁻14%) alloys of 366 MPa, 388 MPa, and 420 MPa, respectively.
在本研究中,采用了各种加工条件来提高铝硅合金的力学性能。通过压铸制备Al-XSi-3Cu-0.5Fe-0.6Mg(X = 10⁻14%)合金时,硅含量从亚共晶(Si-10 wt.%)变化到共晶(Si-12.6 wt.%)和过共晶(Si-14 wt.%)。随后,这些合金在400°C下以最佳挤压比(17:1)进行热挤压,以使挤压棒材尺寸与压缩机尺寸相匹配。使用扫描电子显微镜结合能量色散X射线光谱仪和透射电子显微镜对微观结构特征以及化学成分进行了分析。挤压样品的扫描电子显微镜图像显示初生硅中存在裂纹,金属间化合物(β-Al₅FeSi)相也相应破碎。此外,硅相分布均匀,尺寸保持不变。挤压样品的力学性能随着硅含量的增加而提高,但其延展性随之降低。通过实施适当的T6热处理参数,在铝基体中形成了连贯的Al₂Cu相,并且硅相随着硅含量的增加而逐渐增多。因此,实现了较高的抗拉强度,Al-XSi-3Cu-0.5Fe-0.6Mg(X = 10⁻14%)合金的抗拉强度分别达到366 MPa、388 MPa和420 MPa。