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Abstrakty
The technological parameters of 3D printing have an influence on the mechanical properties of the manufactured components. The purpose of the article was to study the comparative influence of the technological parameter of the number of shells variable in two stages (2 and 10) on selected mechanical properties. The maximum tensile stress for the number of shells 10 was 39.80 MPa, which is higher compared to the number of shells 2: 30.98 MPa. In the case of the maximum bending stress for the number of shells 10, an average value of 61.02 MPa was obtained, which is higher compared to the number of shells of 2: 37.46 MPa. Furthermore strong fit of the Kelvin-Voight model was obtained, as confirmed by the values of the 𝐶ℎ𝑖2:0.0001 and 𝑅2:0.997 coefficients.
Wydawca
Czasopismo
Rocznik
Strony
86--103
Opis fizyczny
Bibliogr. 31 poz., rys., tab., wykr.
Twórcy
autor
- Department of Metrology and Unconventional Manufacturing Methods, Faculty of Mechatronics and Mechanical Engineering, Kielce University of Technology, Kielce, Poland
autor
- Department of Metrology and Unconventional Manufacturing Methods, Faculty of Mechatronics and Mechanical Engineering, Kielce University of Technology, Kielce, Poland
Bibliografia
- 1. Benamira, M.; Benhassine, N.; Ayad, A.; Dekhane, A. Investigation of Printing Parameters Effects on Mechanical and Failure Properties of 3D Printed PLA. Engineering Failure Analysis 2023, 148, doi:10.1016/j.engfailanal.2023.107218.
- 2. Kadhum, A.H.; Al-Zubaidi, S.; Abdulkareem, S.S. Effect of the Infill Patterns on the Mechanical and Surface Characteristics of 3D Printing of PLA, PLA+ and PETG Materials. ChemEngineering 2023, 7, 46, doi:10.3390/CHEMENGINEERING7030046.
- 3. Oleksy, M.; Budzik, G.; Bolanowski, M.; Paszkiewicz, A. Industry 4.0 Part II. Conditions in the Area of Production Technology and Architecture of IT System in Processing of Polymer Materials. Polimery/Polymers 2019, 64, 348–352, doi:10.14314/POLIMERY.2019.5.5.
- 4. Amza, C.G.; Zapciu, A.; Constantin, G.; Baciu, F.; Vasile, M.I. Enhancing Mechanical Properties of Polymer 3D Printed Parts. Polymers (Basel) 2021, 13, 562, doi:10.3390/polym13040562.
- 5. Bochnia, J.; Kozior, T.; Szot, W.; Rudnik, M.; Zmarzły, P.; Gogolewski, D.; Szczygieł, P.; Musiałek, M. Selected Mechanical and Rheological Properties of Medical Resin MED610 in PolyJet Matrix Three-Dimensional Printing Technology in Quality Aspects. 3D Printing and Additive Manufacturing 2022, doi:10.1089/3dp.2022.0215.
- 6. Mazurkiewicz, M.; Kluczyński, J.; Jasik, K.; Sarzyński, B.; Szachogłuchowicz, I.; Łuszczek, J.; Torzewski, J.; Śnieżek, L.; Grzelak, K.; Małek, M. Bending Strength of Polyamide-Based Composites Obtained during the Fused Filament Fabrication (FFF) Process. Materials 2022, 15, doi:10.3390/MA15145079.
- 7. Wu, S.; Shan, Z.; Chen, K.; Wang, S.; Zou, A.; Sun, Q. Bending Properties and Failure Behavior of 3D Printed Fiber Reinforced Resin T-Beam. Polymer Composites 2022, 43, 4556–4568, doi:10.1002/PC.26712.
- 8. García Reyes, M.; Bataller Torras, A.; Cabrera Carrillo, J.A.; Velasco García, J.M.; Castillo Aguilar, J.J. A Study of Tensile and Bending Properties of 3D-Printed Biocompatible Materials Used in Dental Appliances. Journal of Material Science 2022, 57, 2953–2968, doi:10.1007/S10853-021-06811-3/TABLES/11.
- 9. Zhang, X.; Yu, X.; Chen, J.; Zhao, C.; Guan, S.; Fu, Y. Influence Mechanism of the Trabecular and Chamfer Radii on the Three-Point Bending Properties of Trabecular Beetle Elytron Plates. Journal of Bionic Engineering 2021, 18, 409–418, doi:10.1007/S42235-021-0025-Z/METRICS.
- 10. Ermakova, V.A.; Gasperovich, E. V.; Ermakov, A.I.; Litvyak, V. V. Study of Strength Characteristics of Products Produced by 3D-Printing from PLA. Science & Technique 2022, 21, 107–113, doi:10.21122/2227-1031-2022-21-2-107-113.
- 11. Bulanda, K.; Oleksy, M.; Oliwa, R.; Budzik, G.; Przeszlowski, L.; Mazurkow, A. Biodegradable Polymer Composites Used in Rapid Prototyping Technology by Melt Extrusion Polymers (MEP). Polimery 2020, 65, 430–436, doi:10.14314/POLIMERY.2020.6.2.
- 12. Brancewicz-Steinmetz, E.; Vergara, R.D.V.; Buzalski, V.H.; Sawicki, J. Study of the Adhesion between TPU and PLA in Multi-Material 3D Printing. Journal of Achievements in Materials and Manufacturing Engineering 2022, 115, 49–56, doi:10.5604/01.3001.0016.2672.
- 13. Bochnia, J.; Kozior, T.; Blasiak, M. The Mechanical Properties of Thin-Walled Specimens Printed from a Bronze-Filled PLA-Based Composite Filament Using Fused Deposition Modelling. Materials 2023, 16, doi:10.3390/ma16083241.
- 14. Kozior, T.; Mamun, A.; Trabelsi, M.; Sabantina, L. Comparative Analysis of Polymer Composites Produced by FFF and PJM 3D Printing and Electrospinning Technologies for Possible Filter Applications. Coatings 2022, 12, doi:10.3390/COATINGS12010048.
- 15. Faidallah, R.F.; Hanon, M.M.; Szakál, Z.; Oldal, I. Study of the Mechanical Characteristics of Sandwich Structures FDM 3D-Printed. Acta Polytechnica Hungarica 2023, 20, 7–26, doi:10.12700/APH.20.6.2023.6.1.
- 16. Hanon, M.M.; Ghaly, A.; Zsidai, L.; Klébert, S. Tribological Characteristics of Digital Light Processing (DLP) 3D Printed Graphene/Resin Composite: Influence of Graphene Presence and Process Settings. Materials & Design 2022, 218, doi:10.1016/J.MATDES.2022.110718.
- 17. Grzelak, K.; Kluczyński, J.; Szachogłuchowicz, I.; Łuszczek, J.; Śnieżek, L.; Torzewski, J. Modification of Structural Properties Using Process Parameters and Surface Treatment of Monolithic and Thin-Walled Parts Obtained by Selective Laser Melting. Materials 2020, 13, 1–12, doi:10.3390/MA13245662.
- 18. Bayas, E.; Kumar, P.; Harne, M. IMPACT OF PROCESS PARAMETERS ON MECHANICAL PROPERTIES OF FDM 3D-PRINTED PARTS: A COMPREHENSIVE REVIEW. European Chemical Bulletin 2023, doi:10.48047/ecb/2023.12.si5.073.
- 19. Alarifi, I.M. PETG/Carbon Fiber Composites with Different Structures Produced by 3D Printing. Polymer Testing 2023, 120, doi:10.1016/j.polymertesting.2023.107949.
- 20. Bermudo Gamboa, C.; Martín Béjar, S.; Trujillo Vilches, F.J.; Sevilla Hurtado, L. Geometrical Analysis in Material Extrusion Process with Polylactic Acid (PLA)+carbon Fiber. Rapid Prototyping Journal 2022, 29, 21–39, doi:10.1108/RPJ-09-2022-0294.
- 21. Bandinelli, F.; Peroni, L.; Morena, A. Elasto-Plastic Mechanical Modeling of Fused Deposition 3D Printing Materials. Polymers (Basel) 2023, 15, doi:10.3390/POLYM15010234.
- 22. Valvez, S.; Silva, A.P.; Reis, P.N.B. Compressive Behaviour of 3D-Printed PETG Composites. Aerospace 2022, 9, doi:10.3390/AEROSPACE9030124.
- 23. Bochnia, J.; Blasiak, S. Stress Relaxation and Creep of a Polymer-Aluminum Composite Produced through Selective Laser Sintering. Polymers (Basel) 2020, 12, 830, doi:10.3390/POLYM12040830.
- 24. Kozior, T.; Bochnia, J.; Gogolewski, D.; Zmarzły, P.; Rudnik, M.; Szot, W.; Szczygieł, P.; Musiałek, M. Analysis of Metrological Quality and Mechanical Properties of Models Manufactured with Photo-Curing PolyJet Matrix Technology for Medical Applications. Polymers (Basel) 2022, 14, doi:10.3390/polym14030408.
- 25. Bochnia, J.; Blasiak, S. The Creep of Material Obtained Using SLS Technology. MM Science Journal 2020, 2020, 3774–3778, doi:10.17973/mmsj.2020_03_2019122.
- 26. Szot, W. Rheological Analysis of 3D Printed Elements of Acrylonitrile Butadiene and Styrene Material Using Multiparameter Ideal Body Models. 3D Printing and Additive Manufacturing 2023, doi:10.1089/3dp.2022.0298.
- 27. Grubbs, J.; Sousa, B.C.; Cote, D.L. Establishing a Framework for Fused Filament Fabrication Process Optimization: A Case Study with PLA Filaments. Polymers (Basel) 2023, 15, doi:10.3390/POLYM15081945.
- 28. Blaj, M.; Oancea, G. Fused Deposition Modelling Process: A Literature Review. IOP Conference Series: Materials Science and Engineering 2021, 1009, doi:10.1088/1757-899X/1009/1/012006.
- 29. Mallikarjuna, B.; Bhargav, P.; Hiremath, S.; Jayachristiyan, K.G.; Jayanth, N. A Review on the Melt Extrusion-Based Fused Deposition Modeling (FDM): Background, Materials, Process Parameters and Military Applications. International Journal on Interactive Design and Manufacturing (IJIDeM) 2023, doi:10.1007/S12008-023-01354-0.
- 30. MakerBot Makerbot Sketch - User Manual; 2022;
- 31. MakerBot MAKERBOT PLA Available online: https://www.makerbot.com/3d-printers/materials/method-pla/.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2024).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-ed85a4ec-a124-4f2d-a5ab-8b08d1809751