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Novel one-degree of freedom helix machine architecture for additive manufacturing

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Additive manufacturing has been relying on conventional machinery architecture. Conventionally, the architecture used is a Cartesian set-up. The X-Y-Z axis move independently to move the tool on the X-Y plan and increment the Z-axis when the layer is finished. The machine architecture in this paper simplifies the design by constraining the machine to have solely one-degree of freedom. One degree of freedom is also known as a helix linkage. If individually controlled tools are placed all along the rotating arm, then this movement allows an opportunity to deposit material in a single sweeping motion. To increase furthermore the output, multiple arms can be added at a fixed angle. Finally, because of the predictive motion, multiple helix machines can be synchronized to create collaboratively a bigger part. This type of manufacturing process has potential applications in binder jetting, material jetting, and selective laser sintering.
Rocznik
Strony
5--18
Opis fizyczny
Bibliogr. 18 poz., rys., tab.
Twórcy
  • Nantes Université, Ecole Centrale Nantes, CNRS, GeM, UMR 6183, F-44000 Nantes, France
  • Nantes Université, Ecole Centrale Nantes, CNRS, GeM, UMR 6183, F-44000 Nantes, France
Bibliografia
  • [1] HASCOET J., MOGNOL P., Le NEEL A.T., 2018, Procédé et Dispositif de Fabrication Additive Par Agglomération D’un Matériau Granulaire, FR3083472.
  • [2] HASCOET J.-Y., MOGNOL P., Le NEEL A.T., 2018, Dispositif et Procédé de Dépose D’un Matériau Granulaire Pour la Fabrication Additive, FR3083473.
  • [3] Le NEEL T.A., MOGNOL P., HASCOET J.-Y., 2018, A Review on Additive Manufacturing of Sand Molds by Binder Jetting and Selective Laser Sintering, Rapid Prototyp. J., 24/8, 1325–1336. DOI: 10.1108/RPJ-10-2016-0161.
  • [4] Le NEEL T. A., MOGNOL P., HASCOET J.-Y., 2018, Design Methodology for Variable Shell Mould Thickness and Thermal Conductivity Additively Manufactured, Weld. World, 62/5, 1059–1072, DOI: 10.1007/s40194-018-0598-2.
  • [5] Le NEEL T.A., MOGNOL P., HASCOET J.-Y., 2018, Design for Additive Manufacturing: Multi Material Sand Mold, Rapid TCT.
  • [6] GORSKI F., WICHNIAREK R., KUCZKO W., ANDRZEJEWSKI J., 2015, Experimental Determination of Critical Orientation of ABS Parts Manufactured Usin Fused Deposition Modelling Technology, J. Mach. Eng., 15/4, 121–132.
  • [7] MATSI B., SONK K., OTTO T., ROOSIMÖLDER L., 2009, Increasing of rapid prototyping performance by 3D printing technologies, J. Mach. Eng., 9/1, 121–129.
  • [8] WALTHER M., SEWOHL A., SCHLEGEL H., NEUGEBAUER R., 2017, Trajectory Planning for Kinematically Redundant Robots Using Jacobi Matrix – An Industrial Implemantation, J. Mach. Eng., 17/3, 24–35.
  • [9] GOODRIDGE R., ZIEGELMEIER S., 2017, Powder bed fusion of polymers, Elsevier Ltd.
  • [10] LAUNHARDT M., et al., 2016, Detecting Surface Roughness on SLS Parts with Various Measuring Techniques, Polym. Test., 53, 217–226. DOI: 10.1016/j.polymertesting.2016.05.022
  • [11] GEBHARDT A., SCHMIDT F.M., HÖTTER J.S., SOKALLA W., SOKALLA P., 2010, Additive Manufacturing by Selective Laser Melting: The Realizer Desktop Machine and its Application for the Dental Industry, Phys. Procedia, 5/2, 543–549, DOI: 10.1016/j.phpro.2010.08.082.
  • [12] Parameterization of StallGuard2(tm) & CoolStep(tm), https://www.trinamic.com/fileadmin/assets/-Support/AppNotes/AN002-StallGuard2.pdf, (accessed Apr. 26, 2022).
  • [13] GOEHRKE S.A., 2017, 3D Printing Industry Guru Leads Development of First Commercial Robotic 3D Printer, https://3dprint.com/182753/jim-bredt-robotic-3d-printer/, (accessed Apr. 27, 2022).
  • [14] ExOne, “Sand 3D Printers,” 2022. https://www.exone.com/en-US/3D-printing-systems/sand-3d-printers, (accessed Jul. 01, 2022).
  • [15] V. AG, Industrial 3D Printing, 2020, VJET-Industrial-3D-Printing, Online Available: (February-2020).pdf.
  • [16] V. AG, Sand 3D Printer 3D Sand Printing for Casting Molds & Cores, 2022, https://www.voxeljet.com/3d-printing-solution/sand-casting/, (accessed Jul. 01, 2022).
  • [17] KASPRZAK M., 2015., Design and Implementation of Wireless Module Based on ZigBee for Applications in Machine Tools, J. Mach. Eng., 15/4, 133-143.
  • [18] PETTIJOHN F.J., 1975, Sedimentary Rocks, Third Edition, Geosci. Canada, 2/4, 627.
Uwagi
Opracowanie rekordu ze środków MEiN, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2022-2023).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-ff5baa98-a357-4629-8441-d2d97245fc5b
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