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http://dx.doi.org/10.4047/jap.2022.14.1.45

Effect of post-rinsing time and method on accuracy of denture base manufactured with stereolithography  

Katheng, Awutsadaporn (Department of Gerodontology and Oral Rehabilitation, Graduate School of Medical and Dental Sciences, Tokyo Medical and Dental University)
Kanazawa, Manabu (Department of Digital Dentistry, Graduate School of Medical and Dental Sciences, Tokyo Medical and Dental University)
Komagamine, Yuriko (Department of Gerodontology and Oral Rehabilitation, Graduate School of Medical and Dental Sciences, Tokyo Medical and Dental University)
Iwaki, Maiko (Department of Oral Prosthetic Engineering, Graduate School of Medical and Dental Sciences, Tokyo Medical and Dental University)
Namano, Sahaprom (Department of Gerodontology and Oral Rehabilitation, Graduate School of Medical and Dental Sciences, Tokyo Medical and Dental University)
Minakuchi, Shunsuke (Department of Gerodontology and Oral Rehabilitation, Graduate School of Medical and Dental Sciences, Tokyo Medical and Dental University)
Publication Information
The Journal of Advanced Prosthodontics / v.14, no.1, 2022 , pp. 45-55 More about this Journal
Abstract
PURPOSE. This in vitro study investigates the effect of different post-rinsing times and methods on the trueness and precision of denture base resin manufactured through stereolithography. MATERIALS AND METHODS. Ninety clear photopolymer resin specimens were fabricated and divided into nine groups (n = 10) based on rinsing times and methods. All specimens were rinsed with 99% isopropanol alcohol for 5, 10, and 15 min using three methods-automated, ultrasonic cleaning, and hand washing. The specimens were polymerized for 30 min at 40℃. For trueness, the scanned intaglio surface of each SLA denture base was superimposed on the original standard tessellation language (STL) file using best-fit alignment (n = 10). For precision, the scanned intaglio surface of the STL file in each specimen group was superimposed across each specimen (n = 45). The root mean square error (RMSE) was measured, and the data were analyzed statistically through one-way ANOVA and Tukey test (α < .05). RESULTS. The 10-min automated group exhibited the lowest RMSE. For trueness, this was significantly different from specimens in the 5-min hand-washed group (P < .05). For precision, this was significantly different from those of other groups (P < .05), except for the 15-min automated and 15-min ultrasonic groups. The color map results indicated that the 10-min automated method exhibited the most uniform distribution of the intaglio surface adaptation. CONCLUSION. The optimal postprocessing rinsing times and methods for achieving clear photopolymer resin were found to be the automated method with rinsing times of 10 and 15 min, and the ultrasonic method with a rinsing time of 15 min.
Keywords
Additive manufacturing; Stereolithography; Trueness; Precision; Post rinsing;
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Times Cited By KSCI : 4  (Citation Analysis)
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1 Hwang HJ, Lee SJ, Park EJ, Yoon HI. Assessment of the trueness and tissue surface adaptation of CADCAM maxillary denture bases manufactured using digital light processing. J Prosthet Dent 2019;121:110-7.   DOI
2 Xu Y, Xepapadeas AB, Koos B, Geis-Gerstorfer J, Li P, Spintzyk S. Effect of post-rinsing time on the mechanical strength and cytotoxicity of a 3D printed orthodontic splint material. Dent Mater 2021;37:e314-27.   DOI
3 Artopoulos A, Juszczyk AS, Rodriguez JM, Clark RK, Radford DR. Three-dimensional processing deformation of three denture base materials. J Prosthet Dent 2013;110:481-7.   DOI
4 Osman RB, Alharbi N, Wismeijer D. Build angle: does it influence the accuracy of 3D-printed dental restorations using digital light-processing technology? Int J Prosthodont 2017;30:182-8.   DOI
5 Alharbi N, Osman R, Wismeijer D. Effects of build direction on the mechanical properties of 3D-printed complete coverage interim dental restorations. J Prosthet Dent 2016;115:760-7.   DOI
6 Azari A, Nikzad S. The evolution of rapid prototyping in dentistry: a review. Rapid Prototyping J 2009;15:216-25.   DOI
7 Goodacre BJ, Goodacre CJ, Baba NZ, Kattadiyil MT. Comparison of denture base adaptation between CAD-CAM and conventional fabrication techniques. J Prosthet Dent 2016;116:249-56.   DOI
8 Alharbi N, Osman RB, Wismeijer D. Factors influencing the dimensional accuracy of 3D-printed full-coverage dental restorations using stereolithography technology. Int J Prosthodont 2016;29:503-10.   DOI
9 Hada T, Kanazawa M, Iwaki M, Arakida T, Soeda Y, Katheng A, Otake R, Minakuchi S. Effect of printing direction on the accuracy of 3D-printed dentures using stereolithography technology. Materials (Basel) 2020;13:3405.   DOI
10 ISO 5725-1. Accuracy (trueness and precision) of measurement methods and results. Part 1: general principles and definitions. International Standards Organization (ISO); Geneva; Switzerland, 1994. Available at: http://www.iso.org/iso/home.html.
11 Nestler N, Wesemann C, Spies BC, Beuer F, Bumann A. Dimensional accuracy of extrusion- and photopolymerization-based 3D printers: in vitro study comparing printed casts. J Prosthet Dent 2021;125:103-10.   DOI
12 Park JY, Jeong ID, Lee JJ, Bae SY, Kim JH, Kim WC. In vitro assessment of the marginal and internal fits of interim implant restorations fabricated with different methods. J Prosthet Dent 2016;116:536-42.   DOI
13 Katheng A, Kanazawa M, Iwaki M, Arakida T, Hada T, Minakuchi S. Evaluation of trueness and precision of stereolithography-fabricated photopolymer-resin dentures under different postpolymerization conditions: an in vitro study. J Prosthet Dent 2021:S0022-3913(20)30586-2.
14 Alshali RZ, Salim NA, Satterthwaite JD, Silikas N. Post-irradiation hardness development, chemical softening, and thermal stability of bulk-fill and conventional resin-composites. J Dent 2015;43:209-18.   DOI
15 Papanu J, Hess DW, Soane DS, Bell AT. Swelling of poly (methyl methacrylate) thin films in low molecular weight alcohols. J Appl Polym Sci 1990;39:803-23.   DOI
16 Steinmassl O, Dumfahrt H, Grunert I, Steinmassl PA. CAD/CAM produces dentures with improved fit. Clin Oral Investig 2018;22:2829-35.   DOI
17 Inokoshi M, Kanazawa M, Minakuchi S. Evaluation of a complete denture trial method applying rapid prototyping. Dent Mater J 2012;31:40-6.   DOI
18 Kanazawa M, Inokoshi M, Minakuchi S, Ohbayashi N. Trial of a CAD/CAM system for fabricating complete dentures. Dent Mater J 2011;30:93-6.   DOI
19 Strub JR, Rekow ED, Witkowski S. Computer-aided design and fabrication of dental restorations: current systems and future possibilities. J Am Dent Assoc 2006;137:1289-96.   DOI
20 Kang SY, Park JH, Kim JH, Kim WC. Accuracy of provisional crowns made using stereolithography apparatus and subtractive technique. J Adv Prosthodont 2018;10:354-60.   DOI
21 Wang C, Shi YF, Xie PJ, Wu JH. Accuracy of digital complete dentures: a systematic review of in vitro studies. J Prosthet Dent 2021;125:249-56.   DOI
22 van Noort R. The future of dental devices is digital. Dent Mater 2012;28:3-12.   DOI
23 Kalberer N, Mehl A, Schimmel M, Muller F, Srinivasan M. CAD-CAM milled versus rapidly prototyped (3D-printed) complete dentures: an in vitro evaluation of trueness. J Prosthet Dent 2019;121:637-43.   DOI
24 Park ME, Shin SY. Three-dimensional comparative study on the accuracy and reproducibility of dental casts fabricated by 3D printers. J Prosthet Dent 2018;119:861.e1-7.   DOI
25 Janeva NM, Kovacevska G, Elencevski S, Panchevska S, Mijoska A, Lazarevska B. Advantages of CAD/CAM versus conventional complete dentures: a review. Open Access Maced J Med Sci 2018;6:1498-502.   DOI
26 Piedra-Cascon W, Krishnamurthy VR, Att W, Revilla-Leon M. 3D printing parameters, supporting structures, slicing, and post-processing procedures of vat-polymerization additive manufacturing technologies: A narrative review. J Dent 2021;109:103630.   DOI
27 Mostafavi D, Methani MM, Piedra-Cascon W, Zandinejad A, Revilla-Leon M. Influence of the rinsing postprocessing procedures on the manufacturing accuracy of vat-polymerized dental model material. J Prosthodont 2021;30:610-6.   DOI
28 Kim D, Shim JS, Lee D, Shin SH, Nam NE, Park KH, Shim JS, Kim JE. Effects of post-curing time on the mechanical and color properties of three-dimensional printed crown and bridge materials. Polymers 2020;12:2762.   DOI
29 Yoon HI, Hwang HJ, Ohkubo C, Han JS, Park EJ. Evaluation of the trueness and tissue surface adaptation of CAD-CAM mandibular denture bases manufactured using digital light processing. J Prosthet Dent 2018;120:919-26.   DOI
30 Torabi K, Farjood E, Hamedani S. Rapid prototyping technologies and their applications in prosthodontics: a review of literature. J Dent (Shiraz) 2015;16:1-9.
31 Katheng A, Kanazawa M, Iwaki M, Minakuchi S. Evaluation of dimensional accuracy and degree of polymerization of stereolithography photopolymer resin under different postpolymerization conditions: an in vitro study. J Prosthet Dent 2021;125:695-702.   DOI
32 Ammoun R, Dalal N, Abdulmajeed AA, Deeb GR, Bencharit S. Effects of two postprocessing methods onto surface dimension of in-office fabricated stereolithographic implant surgical guides. J Prosthodont 2021;30:71-5.   DOI
33 Lee BI, You SG, You SM, Kang SY, Kim JH. Effect of rinsing time on the accuracy of interim crowns fabricated by digital light processing: an in vitro study. J Adv Prosthodont 2021;13:24-35.   DOI
34 Mayer J, Stawarczyk B, Vogt K, Hickel R, Edelhoff D, Reymus M. Influence of cleaning methods after 3D printing on two-body wear and fracture load of resin-based temporary crown and bridge material. Clin Oral Investig 2021;25:5987-96.   DOI
35 Al-Imam H, Gram M, Benetti AR, Gotfredsen K. Accuracy of stereolithography additive casts used in a digital workflow. J Prosthet Dent 2018;119:580-5.   DOI
36 Kim SY, Shin YS, Jung HD, Hwang CJ, Baik HS, Cha JY. Precision and trueness of dental models manufactured with different 3-dimensional printing techniques. Am J Orthod Dentofacial Orthop 2018;153:144-53.   DOI
37 Cho SH, Schaefer O, Thompson GA, Guentsch A. Comparison of accuracy and reproducibility of casts made by digital and conventional methods. J Prosthet Dent 2015;113:310-5.   DOI
38 Karakurt I, Lin L. 3D printing technologies: techniques, materials, and post-processing. Curr Opin Chem Eng 2020;28:134-43.   DOI