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Ultimate flexural strength and Young’s modulus analysis of denture base resins for masked stereolithography 3D printing technology

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EN
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EN
Purpose: of the study is to investigate the ultimate flexural strength and Young’s modulus of some materials, which can be used for complete denture fabrication by Masked stereolithography 3D printing technology. Design/methodology/approach: Three groups of five specimens each were fabricated. Two of the groups are 3D printed by Masked SLA 3D printer of two commonly used denture base resins. The third group is set to be a control as the specimens were fabricated of a heat-curing acrylic resin. A three-point flexural test tested the objects, and the data collected was used to determine ultimate flexural strength and Young’s modulus calculation. All the results are compared to the ISO Standard 20795-1. Findings: The data shows that the mean ultimate flexural strength of the 3D printed specimens is 87 MPa - 89 MPa. Their results are very similar to those for the heat-curing acrylic resin, which means the ultimate flexural strength is 93 MPa. The mean Young’s modulus obtained for the first group of 3D printed specimens is 2263.21 MPa and 2377.44 MPa for the second one. As for the control group, 2396.06 MPa is achieved. When ISO Standard 20795-1 is inspected, all the data obtained covers the minimum requirements. Research limitations/implications: The limitations of the study concern to some additional factors that should be observed for more detailed evaluation. For example, the level of the final polymerization of light-curing resins for 3D printing, their ability to washstand to different defect and denture-bearing area characteristics (the notch for the labial and buccal frenulum, chambers for torus release, etc.), the ability of the materials to withstand to cyclic load, etc. Practical implications: 3D printing is faster and cheaper than conventional methods for complete denture fabrication. The knowledge about the mechanical properties of the different materials for 3D printing is very valuable for properly selecting a material and approach for complete denture fabrication. Originality/value: Nowadays, 3D printing is essential in dentistry. For this reason, observation and knowledge of the raw materials properties is very important for the proper choice of a material and/or technology for each clinical case.
Rocznik
Strony
78--85
Opis fizyczny
Bibliogr. 45 poz.
Twórcy
autor
  • Faculty of Dental Medicine, Medical University of Varna, 55 Marin Drinov Str, 9002 Varna, Bulgaria
Bibliografia
  • [1] I. Ahmad, F. Al-Harbi, 3D Printing in Dentistry 2019/2020, Quintessence Publishing, Berlin, 2019.
  • [2] P. Stavropoulos, P. Foteinopoulos, Modelling of additive manufacturing processes: a review and classification, Manufacturing Review 5 (2018) 2. DOI: https://doi.org/10.1051/mfreview/2017014
  • [3] E.D. Rekow, Digital dentistry: The new state of the art-is it disruptive or destructive?, Dental Materials 36/1 (2020) 9-24. DOI: https://doi.org/10.1016/j.dental.2019.08.103
  • [4] R. Bogue, 3D printing: the dawn of new era in manufacturing?, Assembly Automation 33/4 (2013) 307-311. DOI: https://doi.org/10.1108/AA-06-2013-055
  • [5] N. Kalberer, A. Mehl, M. Schimmel, F. Müller, M. Srinivasan, CAD-CAM milled versus rapidly prototyped (3D-printed) complete dentures: an in vitro evaluation of trueness, Journal of Prosthetic Dentistry 121/4 (2019) 637-643. DOI: https://doi.org/10.1016/j.prosdent.2018.09.001
  • [6] J. Schweiger, D. Edelhoff, J.-F. Güth, 3D Printing in Digital Prosthetic Dentistry: An Overview of Recent Developments in Additive Manufacturing, Journal of Clinical Medicine 10/9 (2021) 2010. DOI: https://doi.org/10.3390/jcm10092010
  • [7] A. Jawahar, G. Maragathavalli, Applications of 3D printing in dentistry – a review, Journal of Pharmaceutical Science and Research 11/5 (2019) 1670-1675.
  • [8] Y.A. Gueche, N.M. Sanchez-Ballester, S. Cailleaux, B. Bataille, I. Soulairol, Selective Laser Sintering (SLS), a New Chapter in the Production of Solid Oral Forms (SOFs) by 3D Printing, Pharmaceutics 13/8 (2021) 1212. DOI: https://doi.org/10.3390/pharmaceutics13081212
  • [9] P. Vasamsetty, T. Pss, D. Kukkala, M. Singamshetty, S. Gajula, 3D printing in dentistry – Exploring the new horizons, Materials Today: Proceedings 26/2 (2020) 838-841. DOI: https://doi.org/10.1016/j.matpr.2020.01.049
  • [10] P. Parvanov, Treatment Management of Patients Placed under Mandatory Quarantine and Requiring Emergency Dental Treatment, in the Context of COVID-19 Prevention, International Journal of Science and Research 12/5 (2023) 679-681.
  • [11] T. Dikova, Production of high-quality temporary crowns and bridges by stereolithography, Scripta Scientifica Medicinae Dentalis 5/1 (2019) 33-38.
  • [12] T. Dikova, Specifics in Production of Fixed Partial Dentures Using 3D Printed Cast Patterns, in: N. Mitrovic, M. Milosevic, G. Mladenovic (eds), Computational and Experimental Approaches in Materials Science and Engineering, CNNTech 2018, Lecture Notes in Networks and Systems, vol. 90, Springer, Cham, 92-102. DOI: https://doi.org/10.1007/978-3-030-30853-7_6
  • [13] L.A. Dobrzański, L.B. Dobrzański, Dentistry 4.0 concept in the design and manufacturing of prosthetic dental restorations, Processes 8/5 (2020) 525. DOI: https://doi.org/10.3390/pr8050525
  • [14] L.A. Dobrzański, L.B. Dobrzański, A.D. Dobrzańska- Danikiewicz, J. Dobrzańska, The concept of sustainable development of modern dentistry, Processes 8/12 (2020) 1605. DOI: https://doi.org/10.3390/pr8121605
  • [15] A.M. Alwala, U.D. Arvind, S.K. Malyala, P. Vasamsetty, Customization of patient specific distraction device using additive manufacturing technology, Materials Today: Proceedings 5/2/1 (2018) 4134-4137. DOI: https://doi.org/10.1016/j.matpr.2017.11.674
  • [16] J. Anderson, J. Wealleans, J. Ray, Endodontic applications of 3D printing, International Endodontic Journal 51/9 (2018) 1005-1018. DOI: https://doi.org/10.1111/iej.12917
  • [17] F. Asa’ad, G. Pagni, S.P. Pilipchuk, A.B. Giannì, W.V. Giannobile, G. Rasperini, 3D-printed scaffolds and biomaterials: review of alveolar bone augmentation and periodontal regeneration applications, International Journal of Dentistry 2016 (2016) 239842. DOI: https://doi.org/10.1155/2016/1239842
  • [18] J.A. Tamayo, M. Riascos, C.A. Vargas, L.M. Baena, Additive manufacturing of Ti6Al4V alloy via electron beam melting for the development of implants for the biomedical industry, Heliyon 7/5 (2021) e06892. DOI: https://doi.org/10.1016/j.heliyon.2021.e06892
  • [19] N. Al-Harbi, R. Osman, D. Wismeijer, Effects of build direction of the mechanical properties 3D printed complete coverage interim dental restorations, Journal of Prosthetic Dentistry 115/6 (2016) 760-767. DOI: https://doi.org/10.1016/j.prosdent.2015.12.002
  • [20] J.-K. Hong, S.-K. Kim, S.-J. Heo, J.-Y. Koak, Mechanical Properties and Metal-Ceramic Bond Strength of Co-Cr Alloy Manufactured by Selective Laser Melting, Materials 13/24 (2020) 5745. DOI: https://doi.org/10.3390/ma13245745
  • [21] M. Li, X. Wei, Z. Pei, C. Ma, Binder jetting additive manufacturing: observations of compaction-induced powder bed surface defects, Manufacturing Letters 28 (2021) 50-53. DOI: https://doi.org/10.1016/j.mfglet.2021.04.003
  • [22] B. Msallem, N. Sharma, S. Cao, F.S. Halbeisen, H.-F. Zeilhofer, F.M. Thieringer, Evaluation of the Dimensional Accuracy of 3D Printed Anatomical Mandibular Models Using FFF, SLA, SLS, MJ and BJ Printing Technology, Journal of Clinical Medicine 9/3 (2020) 817. DOI: https://doi.org/10.3390/jcm9030817
  • [23] D.Y. Kim, G.Y. Lee, Evaluation of dimension stability according to UV-C ultrasonic cleaning of full arch artificial teeth made with DLP printer for photopolymerization, Journal of Technologic Dentistry 43/3 (2021) 84-92 (in Korean). DOI: https://doi.org/10.14347/jtd.2021.43.3.84
  • [24] S. Chen, J. Yang, Y.-G. Jia, B. Lu, L. Ren, A study of 3D-Printable reinforced composite resin: PMMA modified with silver nanoparticles loaded cellulose nanocrystal, Materials 11/12 (2018) 2444. DOI: https://doi.org/10.3390/ma11122444
  • [25] H.-S. Cha, J.-M. Park, T.-H. Kim, J.-H. Lee, Wear resistance of 3D-printed denture tooth resin opposing zirconia and metal antagonists, Journal of Prosthetic Dentistry 124/3 (2020) 387-394. DOI: https://doi.org/10.1016/j.prosdent.2019.09.004
  • [26] C.-S. Yun, T. Hanawa, M.-H. Hong, B.K. Min, T.-Y. Kwon, Biocompatibility of Ni-Cr alloys, with the same composition, prepared by two new digital manufacturing techniques, Materials Letters 305 (2021) 130761. DOI: https://doi.org/10.1016/j.matlet.2021.130761
  • [27] Y. Guo, Y. Liu, J. Liu, J. Zhao, H. Zhang, Z. Zhang, Shape memory epoxy composites with high mechanical performance manufactured by multi-material direct ink writing, Composites Part A: Applied Science and Manufacturing 135 (2020) 105903. DOI: https://doi.org/10.1016/j.compositesa.2020.105903
  • [28] M. Javaid, A. Haleem, Current status and applications of additive manufacturing in dentistry: A literature-based review, Journal of Oral Biology and Carniofacial Research 9/3 (2019) 179-185. DOI: https://doi.org/10.1016/j.jobcr.2019.04.004
  • [29] A. Della Bona, V. Cantelli, V.T. Britto, K.F. Collares, J.W. Stansbury, 3D printing restorative materials using a stereolithographic technique: a systematic review, Dental Materials 37/2 (2021) 336-350. DOI: https://doi.org/10.1016/j.dental.2020.11.030
  • [30] A. Unkovskiy, E. Wahl, A.T. Zander, F. Huettig, S. Spintzyk, Intraoral scanning to fabricate complete dentures with functional borders: a proof-of-concept case report, BMC Oral Health 19 (2019) 46. DOI: https://doi.org/10.1186/s12903-019-0733-5
  • [31] S. Lee, S.J. Hong, J. Paek, A. Pae, K.R. Kwon, K. Noh, Comparing accuracy of denture bases fabricated by injection molding, CAD/CAM milling, and rapid prototyping method, Journal of Advanced Prosthodontics 11/1 (2019) 55-64. DOI: https://doi.org/10.4047/jap.2019.11.1.55
  • [32] Y. Takeda, J. Lau, H. Nouh, H. Hirayama, A 3D printing replication technique for fabricating digital dentures, Journal of Prosthetic Dentistry 124/3 (2020) 251-256. DOI: https://doi.org/10.1016/j.prosdent.2019.08.026
  • [33] Y.J. Chung, J.M. Park, T.H. Kim, J.S. Ahn, H.S. Cha, J.H. Lee, 3D Printing of Resin Material for Denture Artificial Teeth: Chipping and Indirect Tensile Fracture Resistance, Materials 11/10 (2018) 1798. DOI: https://doi.org/10.3390/ma11101798
  • [34] W.S. Lin, B.T. Harris, J. Pellerito, D. Morton, Fabrication of an interim complete removable dental prosthesis with an in-office digital light processing three-dimensional printer: a proof-of-concept technique, Journal of Prosthetic Dentistry 120/3 (2018) 331-334. DOI: https://doi.org/10.1016/j.prosdent.2017.12.027
  • [35] W.A. Clark, I. Duqum, B.J. Kowalski, The digitally replicated denture technique: a case report, Journal of Esthetic Restorative Dentistry 31/1 (2019) 20-25. DOI: https://doi.org/10.1111/jerd.12447
  • [36] C. Osnes, K. Davda, T.P. Hyde, S. Khalid, S. Dillon, N. Archer, D. Attrill, H. Devlin, A. Keeling, Current challenges for 3D printing complete dentures: experiences from a multi-centre clinical trial, British Dental Journal (2023). DOI: https://doi.org/10.1038/s41415-023-6114-0
  • [37] ISO 20795-1:2013, Dentistry – Base polymers Part 1: Denture base polymers, ISO, Geneva, 2013.
  • [38] H.E. Lee, M.S. Alauddin, M.I.M. Ghazali, Z. Said, S.M. Zol, Effect of Different Vat Polymerization Techniques on Mechanical and Biological Properties of 3D-Printed Denture Base, Polymers 15/6 (2023) 1463. DOI: https://doi.org/10.3390/polym15061463
  • [39] A. Casucci, G. Verniani, A.L. Barbieri, N.M. Ricci, E. Ferrari Cagidiaco, M. Ferrari, Flexural Strength Analysis of Different Complete Denture Resin-Based Materials Obtained by Conventional and Digital Manufacturing, Materials 16/19 (2023) 6559. DOI: https://doi.org/10.3390/ma16196559
  • [40] F.D. al-Qarni, M.M. Gad, Printing Accuracy and Flexural Properties of Different 3D-Printed Denture Base Resins, Materials 15/7 (2022) 2410. DOI: https://doi.org/10.3390/ma15072410
  • [41] J. Żmudzki, G. Chladek, J. Kasperski, Biomechanical factors related to occlusal load transfer in removable complete dentures, Biomechanics and Modeling in Mechanobiology 14/4 (2015) 679-691. DOI: https://doi.org/10.1007/s10237-014-0642-0
  • [42] S. Chaturvedi, M.K. Addas, N.M. Alqahtani, N.M. Al Ahmari, M.A. Alfarsi, Computerized occlusal forces analysis in complete dentures fabricated by additive and subtractive techniques, Technology and Health Care 29/4 (2021) 781-795. DOI: https://doi.org/10.3233/THC-202736
  • [43] K.S.A. Al-Sulaihi, P. Thumati, S. Poovani, J. Radke, Comparative Evaluation of Bite Force and Muscle Tonicity of Between Conventional Complete Dentures and Implant Supported Overdentures: A Clinical Study, Advanced Dental Technologies and Techniques (2020) 84-92 (published online).
  • [44] K. Shala, A. Tmava-Dragusha, L. Dula, T. Pustina- Krasniqi, T. Bicaj, E. Ahmedi, Z. Lila, Evaluation of Maximum Bite Force in Patients with Complete Dentures, Open Access Macedonian Journal of Medical Sciences 6/3 (2018) 559-563. DOI: https://doi.org/10.3889/oamjms.2018.141
  • [45] M.I. Fayad, H.H. Alruwaili, M.S. Khan, M.N. Baig Bite force evaluation in complete denture wearer with different denture base materials: A randomized controlled clinical trial, Journal of International Society of Preventive and Community Dentistry 8/5 (2018) 416-419. DOI: https://doi.org/10.4103/jispcd.JISPCD_2_18
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-c8b72c28-6dbc-45f3-bb15-714fb06f74ca
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