Repair and restoration of engineering components by laser directed energy deposition

被引:1
作者
Aprilia A. [1 ]
Wu N. [2 ]
Zhou W. [1 ]
机构
[1] School of Mechanical and Aerospace Engineering, Nanyang Technological University, 50 Nanyang Avenue, Singapore
[2] Precision Laser Solutions Pte. Ltd., 280 Woodlands Industrial Park E5, Singapore
来源
Materials Today: Proceedings | 2022年 / 70卷
关键词
3D scanner; Additive manufacturing; Laser directed energy deposition; Repair; Restoration;
D O I
10.1016/j.matpr.2022.09.022
中图分类号
学科分类号
摘要
Repair is a process of restoring the functionality of a damaged component to its original functional state to extend the lifespan of the component. For high-value engineering components, it is often more cost-effective to repair the damaged parts than replace them with new ones. This paper focuses on the utilization of laser directed energy deposition (DED) for repair application. DED is one of the additive manufacturing (AM) technologies whereby build layers are formed through feeding material into the melt pool that is generated on a substrate by a focused thermal energy source. Different types of DED configurations in the market are compared and a selection matrix for the repair application has been established. The repair process framework of a laser DED system for achieving an integrated intelligent system is also proposed. Successful circular shape cladding was demonstrated. © 2022
引用
收藏
页码:206 / 211
页数:5
相关论文
共 22 条
[1]  
Aprilia A., Nguyen K.W.L., Khairyanto A., Pang W.C., Tor S.B., Seet G.G.L., Towards automated remanufacturing process with additive manufacturing, Proc. 3rd Int. Conf. Prog. AM, pp. 696-701, (2018)
[2]  
Statham S., Remanufacturing towards a more sustainable future, Electron.-enabled Prod. Knowledge-transf. Network, 4, (2006)
[3]  
Steinhilper R., Recent trends and benefits of remanufacturing: from closed loop businesses to synergetic networks, Proc. 2nd Int. Symp. Environ. Conscious Des. Inverse Manuf., pp. 481-488, (2001)
[4]  
Wilson J.M., Piya C., Shin Y.C., Zhao F., Ramani K., Remanufacturing of turbine blades by laser direct deposition with its energy and environmental impact analysis, J. Clean. Prod., 80, pp. 170-178, (2014)
[5]  
Rahito, Wahab D.A., Azman A.H., Sustainable Design and Manufacturing, 13, pp. 193-198, (2019)
[6]  
Alammar A., Kois J.C., Revilla-Leon M., Att W., Additive manufacturing technologies: current status and future perspectives, J. Prosthodont., 31, S1, pp. 4-12, (2022)
[7]  
Chua C.K., Leong K.F., 3D Printing and Additive Manufacturing Principles and Applications, (2017)
[8]  
ISO/ASTM, Additive manufacturing – general principles – fundamentals and vocabulary, 52900, (2021)
[9]  
Gibson I., Rosen D., Stucker B., Khorasani M., Directed energy deposition, Additive Manufacturing Technologies, pp. 285-318, (2021)
[10]  
Iantaffi C., Leung C.L.A., Chen Y., Guan S., Atwood R.C., Lertthanasarn J., Pham M.S., Meisnar M., Rohr T., Lee P.D., Oxidation induced mechanisms during directed energy deposition additive manufactured titanium alloy builds, Addit. Manuf. Lett., 1, (2021)