Metal additive-manufacturing process and residual stress modeling

被引:183
|
作者
Megahed M. [1 ]
Mindt H.-W. [1 ]
N’Dri N. [2 ]
Duan H. [3 ]
Desmaison O. [4 ]
机构
[1] ESI Software Germany GmbH, Kruppstr. 90, Essen
[2] ESI Group, 99 rue des Solet, Silic 112, Rungis
[3] ESI GmbH, Einsteinring 24, Munich
[4] ESI Group, Le Récamier, 70 Rue Robert, Lyon
关键词
As-built porosity; Blown powder; Distortion; ICME; Metal additive manufacturing; Multi-physics modeling; Multi-scale modeling; Powder bed; Process modeling; Residual stress; Wire feed;
D O I
10.1186/s40192-016-0047-2
中图分类号
学科分类号
摘要
Additive manufacturing (AM), widely known as 3D printing, is a direct digital manufacturing process, where a component can be produced layer by layer from 3D digital data with no or minimal use of machining, molding, or casting. AM has developed rapidly in the last 10 years and has demonstrated significant potential in cost reduction of performance-critical components. This can be realized through improved design freedom, reduced material waste, and reduced post processing steps. Modeling AM processes not only provides important insight in competing physical phenomena that lead to final material properties and product quality but also provides the means to exploit the design space towards functional products and materials. The length- and timescales required to model AM processes and to predict the final workpiece characteristics are very challenging. Models must span length scales resolving powder particle diameters, the build chamber dimensions, and several hundreds or thousands of meters of heat source trajectories. Depending on the scan speed, the heat source interaction time with feedstock can be as short as a few microseconds, whereas the build time can span several hours or days depending on the size of the workpiece and the AM process used. Models also have to deal with multiple physical aspects such as heat transfer and phase changes as well as the evolution of the material properties and residual stresses throughout the build time. The modeling task is therefore a multi-scale, multi-physics endeavor calling for a complex interaction of multiple algorithms. This paper discusses models required to span the scope of AM processes with a particular focus towards predicting as-built material characteristics and residual stresses of the final build. Verification and validation examples are presented, the over-spanning goal is to provide an overview of currently available modeling tools and how they can contribute to maturing additive manufacturing. © 2016, Megahed et al.
引用
收藏
页码:61 / 93
页数:32
相关论文
共 50 条
  • [1] Review: The Metal Additive-Manufacturing Technology of the Ultrasonic-Assisted Wire-and-Arc Additive-Manufacturing Process
    Cao, Yang
    Zhang, Yanchao
    Ming, Wuyi
    He, Wenbin
    Ma, Jun
    [J]. METALS, 2023, 13 (02)
  • [2] Residual Stress in Metal Additive Manufacturing
    Li, C.
    Liu, Z. Y.
    Fang, X. Y.
    Guo, Y. B.
    [J]. 4TH CIRP CONFERENCE ON SURFACE INTEGRITY (CSI 2018), 2018, 71 : 348 - 353
  • [3] Residual stress modeling considering microstructure evolution in metal additive manufacturing
    Mirkoohi, Elham
    Li, Dongsheng
    Garmestani, Hamid
    Liang, Steven Y.
    [J]. Journal of Manufacturing Processes, 2021, 68 : 383 - 397
  • [4] Residual stress modeling considering microstructure evolution in metal additive manufacturing
    Mirkoohi, Elham
    Li, Dongsheng
    Garmestani, Hamid
    Liang, Steven Y.
    [J]. JOURNAL OF MANUFACTURING PROCESSES, 2021, 68 : 383 - 397
  • [5] A Review on Residual Stress in Metal Additive Manufacturing
    Bera, Tanusree
    Mohanty, Smita
    [J]. 3D PRINTING AND ADDITIVE MANUFACTURING, 2024, 11 (04) : 1462 - 1470
  • [6] On Residual Stress Development, Prevention, and Compensation in Metal Additive Manufacturing
    Carpenter, Kevin
    Tabei, Ali
    [J]. MATERIALS, 2020, 13 (02)
  • [7] Residual Stress Reduction Technology in Heterogeneous Metal Additive Manufacturing
    Hong, Myoung-Pyo
    Kim, Young-Suk
    [J]. MATERIALS, 2020, 13 (23) : 1 - 13
  • [8] Heat Source Modeling and Residual Stress Analysis for Metal Directed Energy Deposition Additive Manufacturing
    Kiran, Abhilash
    Li, Ying
    Hodek, Josef
    Brazda, Michal
    Urbanek, Miroslav
    Dzugan, Jan
    [J]. MATERIALS, 2022, 15 (07)
  • [9] Analytical modeling of residual stress formation in hybrid additive manufacturing
    Karunakaran, Rakeshkumar
    Klein, George H.
    Sealy, Michael P.
    [J]. CIRP ANNALS-MANUFACTURING TECHNOLOGY, 2024, 73 (01) : 197 - 200
  • [10] DAMAGE MODELING IN METAL ADDITIVE MANUFACTURING PROCESS SIMULATIONS
    Fietek, C.
    Sakai, J.
    Love, A.
    Park, Y. H.
    [J]. PROCEEDINGS OF ASME 2023 PRESSURE VESSELS & PIPING CONFERENCE, PVP2023, VOL 2, 2023,