Wang Yanhu, Konovalov Sergey, Chen Xizhang, Ramachandra Arvind Singh, Subramanian Jayalakshmi
School of Mechanical and Electrical Engineering, Wenzhou University, Chashan Education Town, Wenzhou, 325035, Zhejiang, China.
Department of Metals Technology and Aviation Materials, Samara National Research University, 34, Moskovskoye Shosse, Samara, 443086, Samara, Russia.
3D Print Addit Manuf. 2021 Oct 1;8(5):331-339. doi: 10.1089/3dp.2020.0321. Epub 2021 Oct 8.
By using cold metal transfer technique, Cu-Al alloy with addition of silicon (Si) and magnesium (Mg), (1) Cu-6.5% Al and (2) Cu-6.5% Al-1.2% Si-0.5% Mg were manufactured additively. Four samples were deposited: Cu-6.5% Al alloy as samples 1 and 2, and Cu-6.5% Al-1.2% Si-0.5% Mg alloy as samples 3 and 4. The alloys were homogenized by heat treatments: (1) 800°C (2 h) for sample 2 and (2) sample 4, to improve their mechanical properties. Detailed microstructural investigation conducted using scanning and transmission electron microscopies showed formation of various intermetallic phases. Results revealed that (1) the addition of Si and Mg increases the strength properties and ductility and (2) heat treatments improved strength properties but reduce the ductility of the alloys. The article discusses the correlation of the identified microstructure and the evaluated mechanical properties of the additively manufactured alloys.
通过使用冷金属过渡技术,添加了硅(Si)和镁(Mg)的铜铝合金,即(1)Cu-6.5%Al和(2)Cu-6.5%Al-1.2%Si-0.5%Mg,采用增材制造工艺制成。沉积了四个样品:Cu-6.5%Al合金作为样品1和2,Cu-6.5%Al-1.2%Si-0.5%Mg合金作为样品3和4。通过热处理对合金进行均匀化处理:(1)对样品2和(2)样品4在800°C下处理2小时,以改善其力学性能。使用扫描电子显微镜和透射电子显微镜进行的详细微观结构研究表明形成了各种金属间相。结果表明:(1)添加Si和Mg提高了强度性能和延展性;(2)热处理改善了强度性能,但降低了合金的延展性。本文讨论了增材制造合金中所识别的微观结构与评估的力学性能之间的相关性。