A strategy to eliminate interbead defects and improve dimensional accuracy in material extrusion 3D printing of highly filled polymer

被引:20
作者
Cote, Raphael [1 ]
Demers, Vincent [1 ]
Demarquette, Nicole R. [1 ]
Charlon, Sebastien [2 ]
Soulestin, Jeremie [2 ]
机构
[1] Ecole Technol Super, 1100 Notre Dame West, Montreal, PQ H3C 1K3, Canada
[2] IMT Nord Europe, Inst Mines Telecom, Ctr Mat & Proc, F-59000 Lille, France
关键词
Additive Manufacturing; Material Extrusion; Highly filled Polymer; Green Density; Overlap; Interbead Defects; Dimensional Deviations; TI-6AL-4V ALLOY; FABRICATION; PARTS;
D O I
10.1016/j.addma.2023.103509
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Material extrusion 3D printing (MEX) of highly filled polymer has been demonstrated capable of prototyping or fabricating metallic parts with complex shapes. However, interlayer rhomboid voids produced during the pro-duction run directly impact the density of parts, while the widely used over-extrusion strategy negatively affects their overall dimensions. Using a high solid loading powder-binder feedstock, an overlapping strategy was proposed to fabricate full density and dimensional accurate green parts. Stainless steel powder was mixed with a wax-based binder to formulate a feedstock that was used to 3D print hollow square prisms with different overlapping ratios and layer heights. The influence of these printing parameters was quantified by Archimedes density, size/shape of interlayer voids, and CMM dimensional deviations. The results showed that the layer height had no influence on the defect size when an overlap is used; an overlap as low as 5 % already reduced the defects traditionally minimized by a smaller layer height. An overlap ratio ranging from 15 % to 20 % both eliminated the interlayer rhomboid voids and minimized dimensional deviations of parts fabricated by MEX. High overlapping (i.e., > 25 %) promoted the formation of macroscopic defects which decreased the part quality.
引用
收藏
页数:11
相关论文
共 53 条
  • [1] [Anonymous], 2015, ISO 17296-2
  • [2] [Anonymous], 2021, 52900 I A ASTM
  • [3] [Anonymous], 2016, ASTMB923
  • [4] [Anonymous], 2015, ASTMD3418
  • [5] [Anonymous], 2017, ASTMB962
  • [6] Towards Large Parts Manufacturing in Additive Technologies for Aerospace and Automotive applications
    Bacciaglia, Antonio
    Ceruti, Alessandro
    Liverani, Alfredo
    [J]. 3RD INTERNATIONAL CONFERENCE ON INDUSTRY 4.0 AND SMART MANUFACTURING, 2022, 200 : 1113 - 1124
  • [7] Research on Shape and Dimensional Accuracy of FDM Produced Parts
    Beniak, J.
    Krizan, P.
    Soos, L'
    Matus, M.
    [J]. 9TH THAI SOCIETY OF MECHANICAL ENGINEERS, INTERNATIONAL CONFERENCE ON MECHANICAL ENGINEERING (TSME-ICOME 2018), 2019, 501
  • [8] Modelling of porosity of 3D printed ceramic prostheses with grid structure
    Buj-Corral, I.
    Petit-Rojo, O.
    Bagheri, A.
    Minguella-Canela, J.
    [J]. MANUFACTURING ENGINEERING SOCIETY INTERNATIONAL CONFERENCE 2017 (MESIC 2017), 2017, 13 : 770 - 777
  • [9] Effect of Printing Parameters on Dimensional Error, Surface Roughness and Porosity of FFF Printed Parts with Grid Structure
    Buj-Corral, Irene
    Bagheri, Ali
    Sivatte-Adroer, Maurici
    [J]. POLYMERS, 2021, 13 (08)
  • [10] Co^te R., 2022, 37 INT C POL PROC SO