Model-based temperature offset compensation for additive manufacturing by directed energy deposition

被引:0
|
作者
Dillkoetter, David [1 ]
Stoppok, Johann [1 ]
Thiele, Magnus [1 ]
Esen, Cemal [1 ]
Moennigmann, Martin [1 ]
机构
[1] Ruhr Univ Bochum, Dept Mech Engn, D-44801 Bochum, Germany
来源
IFAC PAPERSONLINE | 2020年 / 53卷 / 02期
关键词
additive manufacturing; directed energy deposition; process control; metal processing; manufacturing plant control; FEEDBACK;
D O I
10.1016/j.ifacol.2020.12.691
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Laser based directed energy deposition (DED), also known as laser metal deposition or laser cladding, is an additive manufacturing technology for building 3D freeform parts. Reliable temperature measurements are of obvious interest and importance for the control of these processes. We propose a model-based method for the correction of temperature measurements from an imperfectly aligned sensor, which is a pyrometer in our process. We show that the proposed method can improve the reliability of the pyrometer-based temperature measurements even if the pyrometer is carefully aligned and calibrated according to industrial standards. We apply the proposed method to a powder-based directed energy deposition process. Due to its simplicity, the proposed method can easily be adapted to other additive manufacturing process types. Copyright (C) 2020 The Authors.
引用
收藏
页码:11812 / 11817
页数:6
相关论文
共 50 条
  • [1] Adaptive model-based optimization for fusion-based metal additive manufacturing (directed energy deposition)
    Ansari, Mazyar
    Khamooshi, Mobin
    Toyserkani, Ehsan
    JOURNAL OF MANUFACTURING PROCESSES, 2023, 108 : 588 - 595
  • [2] Automated Interlayer Wall Height Compensation for Wire Based Directed Energy Deposition Additive Manufacturing
    Qin, Jian
    Vives, Javier
    Raja, Parthiban
    Lasisi, Shakirudeen
    Wang, Chong
    Charrett, Thomas
    Ding, Jialuo
    Williams, Stewart
    Hallam, Jonathan Mark
    Tatam, Ralph
    SENSORS, 2023, 23 (20)
  • [3] Fast simulation of temperature and phase transitions in directed energy deposition additive manufacturing
    Weisz-Patrault, Daniel
    ADDITIVE MANUFACTURING, 2020, 31
  • [4] Dexel-Based Simulation of Directed Energy Deposition Additive Manufacturing
    Boess, Volker
    Denkena, Berend
    Dittrich, Marc-Andre
    Malek, Talash
    Friebe, Sven
    JOURNAL OF MANUFACTURING AND MATERIALS PROCESSING, 2021, 5 (01):
  • [5] Application of Directed Energy Deposition-Based Additive Manufacturing in Repair
    Saboori, Abdollah
    Aversa, Alberta
    Marchese, Giulio
    Biamino, Sara
    Lombardi, Mariangela
    Fino, Paolo
    APPLIED SCIENCES-BASEL, 2019, 9 (16):
  • [6] A review of slicing methods for directed energy deposition based additive manufacturing
    Xu, Jing
    Gu, Xizhi
    Ding, Donghong
    Pan, Zengxi
    Chen, Ken
    RAPID PROTOTYPING JOURNAL, 2018, 24 (06) : 1012 - 1025
  • [7] Geometric distortion-compensation via transient numerical simulation for directed energy deposition additive manufacturing
    Biegler, Max
    Elsner, Beatrix A. M.
    Graf, Benjamin
    Rethmeier, Michael
    SCIENCE AND TECHNOLOGY OF WELDING AND JOINING, 2020, 25 (06) : 468 - 475
  • [8] Residual Strains In Directed Energy Deposition Additive Manufacturing.
    Weisz-Patrault, Daniel
    INTERNATIONAL CONFERENCE ON NUMERICAL ANALYSIS AND APPLIED MATHEMATICS ICNAAM 2019, 2020, 2293
  • [9] Directed energy deposition: Applications and outlook METAL DIRECTED ENERGY DEPOSITION (DED) ADDITIVE MANUFACTURING IS TRANSITIONING INTO PRODUCTION
    Nassar, Abdalla R.
    LASER FOCUS WORLD, 2021, 57 (10): : 23 - 26
  • [10] Additive manufacturing of cobalt-based alloy on tool steel by directed energy deposition
    Zhang, Xinchang
    Li, Wei
    Liou, Frank
    OPTICS AND LASER TECHNOLOGY, 2022, 148