The Evaluation of the Trueness of Dental Mastercasts Obtained through Different 3D Printing Technologies.

3D printing accuracy dental mastercasts prosthodontics technology trueness

Journal

Journal of functional biomaterials
ISSN: 2079-4983
Titre abrégé: J Funct Biomater
Pays: Switzerland
ID NLM: 101570734

Informations de publication

Date de publication:
29 Jul 2024
Historique:
received: 06 06 2024
revised: 18 07 2024
accepted: 24 07 2024
medline: 28 8 2024
pubmed: 28 8 2024
entrez: 28 8 2024
Statut: epublish

Résumé

In contemporary dentistry, several 3D printing techniques, including a stereolithography apparatus (SLA), digital light processing (DLP), liquid crystal display (LCD), and PolyJet 3D inkjet printing technology (PolyJet), are employed for model production. Despite their widespread use, there remains a paucity of the literature regarding the trueness and precision of these devices in dental applications. Existing studies comparing the accuracy of dental models manufactured by different printing technologies yield disparate conclusions regarding dental prosthesis manufacturing. This study aimed to test two null hypotheses: first, that the trueness of various new-generation 3D printers is equivalent, and second, that the trueness of printing by these printers is sufficient for achieving high-precision mastercasts in dental prosthodontics manufacturing. The research focuses on evaluating the trueness of five contemporary dental 3D printers: Anycubic Mono X 6Ks (Hongkong Anycubic Technology Co., Hongkong, China), Asiga Max (Asiga, Sydney, Australia), Creo C5 (Planmeca Oy, Helsinki, Finland), Form 3B (Formlabs, Boston, MA, USA), and J5 Dentajet (Stratasys Ltd., Eden Prairie, MN, USA). The methodology employed involved the creation of a digital test object using Blender software, adhering meticulously to the dimensions outlined in ISO standard 20896-1. These dimensions were chosen to be both relevant for this study and representative of clinical scenarios. Subsequently, the test object was printed and precise measurements were conducted utilizing a metrology-type Nikon XTH225 ST Reflection target in conjunction with VGStudio MAX analysis software. The results of our investigation revealed clinically negligible deviations in ball dimensions across all printers, with the maximum observed deviations ranging between 1.17% and 2.03% (notably observed in the Creo C5 printer). Transversal distortion exhibited variance based on the linear accuracy of each printer, with Stratasys21 and Formlabs 3B demonstrating superior accuracy among the evaluated printers. Distortions in the analyzed dimensions (specifically, anterior b-c, posterior a-d, and oblique a-c) were found to be uniform. In conclusion, while the first null hypothesis was rejected, indicating variations in trueness among the 3D printers assessed, our findings affirm the suitability of all five analyzed 3D printers for clinical applications. Consequently, these printers can be utilized for the fabrication of high-precision mastercasts in dental prosthodontics manufacturing.

Identifiants

pubmed: 39194648
pii: jfb15080210
doi: 10.3390/jfb15080210
pii:
doi:

Types de publication

Journal Article

Langues

eng

Auteurs

Lucian Toma Ciocan (LT)

Discipline of Dental Prosthetics Technology, Faculty of Dentistry, "Carol Davila" University of Medicine and Pharmacy, Dionisie Lupu Street, No. 37, District 2, 020021 Bucharest, Romania.

Vlad Gabriel Vasilescu (VG)

Discipline of Dental Prosthetics Technology, Faculty of Dentistry, "Carol Davila" University of Medicine and Pharmacy, Dionisie Lupu Street, No. 37, District 2, 020021 Bucharest, Romania.

Mihaela Pantea (M)

Discipline of Prosthodontics, Faculty of Dentistry, "Carol Davila" University of Medicine and Pharmacy, 37 Dionisie Lupu Street, District 2, 020021 Bucharest, Romania.

Silviu Mirel Pițuru (SM)

Discipline of Organization, Professional Legislation and Dental Office Management, "Carol Davila" University of Medicine and Pharmacy, Dionisie Lupu Street, No. 37, District 2, 020021 Bucharest, Romania.

Marina Imre (M)

Discipline of Prosthodontics, Faculty of Dentistry, "Carol Davila" University of Medicine and Pharmacy, 37 Dionisie Lupu Street, District 2, 020021 Bucharest, Romania.

Alexandra Ripszky Totan (A)

Department of Biochemistry, Faculty of Dentistry, "Carol Davila" University of Medicine and Pharmacy, Dionisie Lupu Street, No. 37, District 2, 020021 Bucharest, Romania.

Florin Octavian Froimovici (FO)

Discipline of Dental Prosthetics Technology, Faculty of Dentistry, "Carol Davila" University of Medicine and Pharmacy, Dionisie Lupu Street, No. 37, District 2, 020021 Bucharest, Romania.

Classifications MeSH