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Experimental Determination of Critical Orientation of ABS Parts Manufactured Using Fused Deposition Modelling Technology

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The paper presents results of experiments aimed at determination of range of critical orientation for parts manufactured additively using the Fused Deposition Modelling method, out of ABS material. Numerous previous observations of plastic parts manufactured additively using the FDM process allowed concluding, that change of values of the manufacturing orientation (i.e. direction of layer slicing plane) has large influence on the macrostructure of obtained parts, thus affecting their strength and behaviour under load – the material behaves either as a thermoplastic with a yield point or as a brittle material with no yield point. The paper presents methodology and results of experiments aimed at determination of a certain value or value range, at which transition between the two behaviours occurs. The experiments consisted of tensile tests performed on samples manufactured additively in a pre-selected range of orientations. The obtained results – a value range valid for the selected type of load and sample shape – will be useful in future to help select an optimal orientation of part for a defined task.
Rocznik
Strony
121--132
Opis fizyczny
Bibliogr. 20 poz., tab., rys.
Twórcy
autor
  • Poznan University of Technology, Chair of Management and Production Engineering, Poznan, Poland
  • Poznan University of Technology, Chair of Management and Production Engineering, Poznan, Poland
autor
  • Poznan University of Technology, Chair of Management and Production Engineering, Poznan, Poland
  • Poznan University of Technology, Institute of Materials Technology, Poznan, Poland
Bibliografia
  • [1] AHN S.H. et al., 2003, Anisotropic Tensile Failure Model of Rapid Prototyping Parts - Fused Deposition Modeling (FDM). International Journal of Modern Physics B, 17, 8-9.
  • [2] BAECHLER C., DEVUONO M., PEARCE J.M., 2013, Distributed recycling of waste polymer into RepRap feedstock, Rapid Prototyping Journal, 2013, 19/2, 118-125.
  • [3] BAGSIK A., SCHOPPNER V., 2011, Mechanical properties of Fused Deposition Modeling parts manufactured with ULTEM*9085, Proceedings of ANTEC, Boston.
  • [4] BELLINI A., GUCERI S., 2003, Mechanical characterization of parts fabricated using Fused Deposition Modeling, Rapid Prototyping Journal, 9/2, 252 – 264, DOI: 10.1108/13552540310489631, 9, 252-264.
  • [5] BENIAK J., KRIZAN P, MATUS M., SVATEK M., 2015, Ecological PLA plastic used for FDM Rapid Prototyping technology, Proceedings of the International Multidisciplinary Scientific GeoConference SGEM; 2015, 4, 117-123.
  • [6] CHUA C.K., LEONG K.F., LIM C.S., 2003, Rapid Prototyping: Principles and Applications, World Scientific Publishing, 420, Singapore.
  • [7] GHORPADE A, KARUNAKARAN K.P, WIWARI M.K., 2007, Selection of optimal part orientation in fused deposition modeling using swarm intelligence, Journal of Engineering Manufacture, 221, 1209-1219.
  • [8] GORSKI F., KUCZKO W., WICHNIAREK R., 2014, Impact strength of ABS parts manufactured using Fused Deposition Modeling technology, Archives of Mechanical Technology and Automation, 31/1, 3-12.
  • [9] GORSKI F., KUCZKO W., WICHNIAREK R., HAMROL A., 2015, Computation of Mechanical Properties of Parts Manufactured by Fused Deposition Modeling Using Finite Element Method, 10th International Conference on Soft Computing Models in Industrial and Environmental Applications, Advances in Intelligent Systems and Computing, Springer International Publishing, 403-415.
  • [10] GORSKI F., WICHNIAREK R., ANDRZEJEWSKI J., 2012, Influence of part orientation on strength of ABS models manufactured using Fused Deposition Modeling technology, Polymer Processing, 9, 428-435.
  • [11] GORSKI F., WICHNIAREK R., KUCZKO W., 2013, Influence of process parameters on dimensional accuracy of parts manufactured using Fused Deposition Modeling technology, Advances in Science & Technology – Research Journal, 7 /19, 27.
  • [12] GORSKI F., WICHNIAREK R., KUCZKO W., ZAWADZKI P., BUN P., 2015, Strength of ABS parts produced by Fused Deposition Modelling technology – a critical orientation problem, Adv. Sci. Technol. Res. J., 9/26, 12-19, DOI: 10.12913/22998624/23599/26.
  • [13] HAN W.B, JAFARI M.A, SEYED K., 2003, Process speeding up via deposition planning in fused deposition-based layered manufacturing processes, Rapid Prototyping Journal, 9/4, 212-218.
  • [14] MASOOD S.H, RATTANAWONG W, IOVENITTI P., 2000, Part build orientation based on volumetric error in fused deposition modeling, International Journal of Advanced Manufacturing Technology, 16, 162-168.
  • [15] PAJAK E., GORSKI F., WICHNIAREK R., DUDZIAK A., 2011, Incremental techniques and virtual reality in the processes of production preparation, Promocja 21, Poznan, (in Polish).
  • [16] PEREZ L.C.J., 2002. Analysis of surface roughness and dimensional accuracy capability of Fused Deposition Modelling processes, International Journal of Production Research, 40, 2865-2881.
  • [17] RODRIGUES J.F, THOMAS J.P, RENAUD J.E., 2003, Mechanical behavior of acrylonitrile butadiene styrene fused deposition materials modeling, Rapid Prototyping Journal, 9, 219-230.
  • [18] THRIMURTHULU K., PANDEY P.M, VENKATA R.N., 2004, Optimum part deposition orientation in fused deposition modeling, International Journal of Machine Tools & Manufacture, 44, 585-594.
  • [19] VEGA V., CLEMENTS J., LAM T., ABAD A., FRITZ B., ULA N., ES-SAID O.S., 2011, The effect of layer orientation on the mechanical properties and microstructure of a polymer, Journal of Materials Engineering and Performance, 20, 978-987.
  • [20] XU F., LOH H.T, WONG Y.S., 1999, Consideration and selection of optimal orientation for different rapid prototyping systems, Rapid Prototyping Journal, 2, 54-61.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-99a85cda-9e33-49b8-9770-8e54c1fc1013
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