Additive manufacturing a powerful tool for the aerospace industry

被引:163
|
作者
Khorasani, Mahyar [1 ]
Ghasemi, AmirHossein [2 ]
Rolfe, Bernard [3 ]
Gibson, Ian [4 ,5 ]
机构
[1] RMIT Univ, Sch Engn, Melbourne, Vic, Australia
[2] Shahid Rajaee Teacher Training Univ, Dept Mech Engn, Tehran, Iran
[3] Deakin Univ, Sch Engn, Burwood, Vic, Australia
[4] Univ Twente, Dept Design Prod & Management, Fraunhofer Project Ctr Complex Syst Engn, Enschede, Netherlands
[5] Deakin Univ, Sch Engn, Geelong, Vic, Australia
关键词
Additive manufacturing; Advanced manufacturing; Aerospace industry; Prototype integration; DESIGN; TECHNOLOGIES; SCAFFOLDS; IMPLANTS; LASER;
D O I
10.1108/RPJ-01-2021-0009
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Purpose Additive manufacturing (AM) offers potential solutions when conventional manufacturing reaches its technological limits. These include a high degree of design freedom, lightweight design, functional integration and rapid prototyping. In this paper, the authors show how AM can be implemented not only for prototyping but also production using different optimization approaches in design including topology optimization, support optimization and selection of part orientation and part consolidation. This paper aims to present how AM can reduce the production cost of complex components such as jet engine air manifold by optimizing the design. This case study also identifies a detailed feasibility analysis of the cost model for an air manifold of an Airbus jet engine using various strategies, such as computer numerical control machining, printing with standard support structures and support optimization. Design/methodology/approach Parameters that affect the production price of the air manifold such as machining, printing (process), feedstock, labor and post-processing costs were calculated and compared to find the best manufacturing strategy. Findings Results showed that AM can solve a range of problems and improve production by customization, rapid prototyping and geometrical freedom. This case study showed that 49%-58% of the cost is related to pre- and post-processing when using laser-based powder bed fusion to produce the air manifold. However, the cost of pre- and post-processing when using machining is 32%-35% of the total production costs. The results of this research can assist successful enterprises, such as aerospace, automotive and medical, in successfully turning toward AM technology. Originality/value Important factors such as validity, feasibility and limitations, pre-processing and monitoring, are discussed to show how a process chain can be controlled and run efficiently. Reproducibility of the process chain is debated to ensure the quality of mass production lines. Post-processing and qualification of the AM parts are also discussed to show how to satisfy the demands on standards (for surface quality and dimensional accuracy), safety, quality and certification. The original contribution of this paper is identifying the main production costs of complex components using both conventional and AM.
引用
收藏
页码:87 / 100
页数:14
相关论文
共 50 条
  • [1] Additive Manufacturing for the Aerospace Industry
    Simpson, Timothy W.
    AIAA JOURNAL, 2020, 58 (04) : 1901 - 1902
  • [2] Additive Manufacturing for the Aerospace Industry
    Clare, Adam T.
    AERONAUTICAL JOURNAL, 2020, 124 (1282): : 2041 - 2041
  • [3] A market assessment of additive manufacturing potential for the aerospace industry
    Altiparmak, Sadettin Cem
    Xiao, Bowen
    JOURNAL OF MANUFACTURING PROCESSES, 2021, 68 : 728 - 738
  • [4] Review: The Impact of Metal Additive Manufacturing on the Aerospace Industry
    Yusuf, Shahir Mohd
    Cutler, Samuel
    Gao, Nong
    METALS, 2019, 9 (12)
  • [5] Additive Manufacturing in India Aerospace Manufacturing and MRO Industry: Challenges and Opportunities
    Marudhappan R.
    Chandrasekhar U.
    Journal of The Institution of Engineers (India): Series C, 2022, 103 (04) : 1013 - 1030
  • [6] Metal Additive Manufacturing Cycle in Aerospace Industry: A Comprehensive Review
    Barroqueiro, B.
    Andrade-Campos, A.
    Valente, R. A. E.
    Neto, V
    JOURNAL OF MANUFACTURING AND MATERIALS PROCESSING, 2019, 3 (03):
  • [7] Additive manufacturing in aerospace
    Holmes, Mark
    Metal Powder Report, 2014, 69 (06)
  • [8] Additive Manufacturing for Aerospace
    Schiller, G. J.
    2015 IEEE AEROSPACE CONFERENCE, 2015,
  • [9] Additive Manufacturing and 3D Printer Technology in Aerospace Industry
    Kalender, Murathan
    Kilic, Sefa Fines
    Ersoy, Sezgin
    Bozkurt, Yahya
    Salman, Serdar
    2019 9TH INTERNATIONAL CONFERENCE ON RECENT ADVANCES IN SPACE TECHNOLOGIES (RAST), 2019, : 689 - 695
  • [10] Standardization for Additive Manufacturing in Aerospace
    Krueger, Holger
    ENGINEERING, 2017, 3 (05) : 585 - 585