Localized and generalized simulated wear of resin composites
- PMID: 25706614
- DOI: 10.2341/13-155-L
Localized and generalized simulated wear of resin composites
Abstract
A laboratory study was conducted to examine the wear of resin composite materials using both a localized and generalized wear simulation model. Twenty specimens each of seven resin composites (Esthet•X HD [HD], Filtek Supreme Ultra [SU], Herculite Ultra [HU], SonicFill [SF], Tetric EvoCeram Bulk Fill [TB], Venus Diamond [VD], and Z100 Restorative [Z]) were subjected to a wear challenge of 400,000 cycles for both localized and generalized wear in a Leinfelder-Suzuki wear simulator (Alabama machine). The materials were placed in custom cylinder-shaped stainless steel fixtures. A stainless steel ball bearing (r=2.387 mm) was used as the antagonist for localized wear, and a stainless steel, cylindrical antagonist with a flat tip was used for generalized wear. A water slurry of polymethylmethacrylate (PMMA) beads was used as the abrasive media. A noncontact profilometer (Proscan 2100) with Proscan software was used to digitize the surface contours of the pretest and posttest specimens. AnSur 3D software was used for wear assessment. For localized testing, maximum facet depth (μm) and volume loss (mm(3)) were used to compare the materials. The mean depth of the facet surface (μm) and volume loss (mm(3)) were used for comparison of the generalized wear specimens. A one-way analysis of variance (ANOVA) and Tukey post hoc test were used for data analysis of volume loss for both localized and generalized wear, maximum facet depth for localized wear, and mean depth of the facet for generalized wear. The results for localized wear simulation were as follows [mean (standard deviation)]: maximum facet depth (μm)--Z, 59.5 (14.7); HU, 99.3 (16.3); SU, 102.8 (13.8); HD, 110.2 (13.3); VD, 114.0 (10.3); TB, 125.5 (12.1); SF, 195.9 (16.9); volume loss (mm(3))--Z, 0.013 (0.002); SU, 0.026 (0.006); HU, 0.043 (0.008); VD, 0.057 (0.009); HD, 0.058 (0.014); TB, 0.061 (0.010); SF, 0.135 (0.024). Generalized wear simulation results were as follows: mean depth of facet (μm)--Z, 9.3 (3.4); SU, 12.8 (3.1); HU, 15.6 (3.2); TB, 19.2 (4.8); HD, 26.8 (6.5); VD, 29.1 (5.5); SF, 35.6 (8.4); volume loss (mm(3))--Z, 0.132 (0.049); SU, 0.0179 (0.042); HU, 0.224 (0.044); TB, 0.274 (0.065); HD, 0.386 (0.101); VD, 0.417 (0.076); SF, 0.505 (0.105). The ANOVA showed a significant difference among materials (p<0.001) for facet depth and volume loss for both localized and generalized wear. The post hoc test revealed differences (p<0.05) in localized and generalized wear values among the seven resin composites examined in this study. The findings provide valuable information regarding the relative wear characteristics of the materials in this study.
Similar articles
-
Wear rates of resin composites.Oper Dent. 2013 Mar-Apr;38(2):226-33. doi: 10.2341/12-112-L. Epub 2012 Aug 3. Oper Dent. 2013. PMID: 22856679
-
Mechanical Properties and Simulated Wear of Provisional Resin Materials.Oper Dent. 2015 Nov-Dec;40(6):603-13. doi: 10.2341/14-132-L.1. Epub 2014 Nov 18. Oper Dent. 2015. PMID: 25405905
-
Simulated Wear of Self-Adhesive Resin Cements.Oper Dent. 2016 May-Jun;41(3):327-38. doi: 10.2341/14-227-L. Epub 2015 Dec 15. Oper Dent. 2016. PMID: 26669501
-
Influence of Thermal Cycling on Flexural Properties and Simulated Wear of Computer-aided Design/Computer-aided Manufacturing Resin Composites.Oper Dent. 2017 Jan/Feb;42(1):101-110. doi: 10.2341/16-046-L. Epub 2016 Nov 1. Oper Dent. 2017. PMID: 27802120
-
The accuracy and precision of wear testing and wear facet analyses: The two sides of the story.Dent Mater. 2024 May;40(5):789-799. doi: 10.1016/j.dental.2024.02.025. Epub 2024 Mar 10. Dent Mater. 2024. PMID: 38461075 Review.
Cited by
-
Deterioration of direct restorative materials under erosive conditions with impact of abrasion and attrition in vitro.Biomater Investig Dent. 2023 Jun 9;10(1):2202211. doi: 10.1080/26415275.2023.2202211. eCollection 2023. Biomater Investig Dent. 2023. PMID: 37313433 Free PMC article.
-
Wear resistance of indirect composite resins used for provisional restorations supported by implants.J Adv Prosthodont. 2019 Aug;11(4):232-238. doi: 10.4047/jap.2019.11.4.232. Epub 2019 Aug 27. J Adv Prosthodont. 2019. PMID: 31497271 Free PMC article.
-
Wear of contemporary dental composite resin restorations: a literature review.Restor Dent Endod. 2021 Feb 25;46(2):e18. doi: 10.5395/rde.2021.46.e18. eCollection 2021 May. Restor Dent Endod. 2021. PMID: 34123754 Free PMC article. Review.
-
Wear of resin composites: Current insights into underlying mechanisms, evaluation methods and influential factors.Jpn Dent Sci Rev. 2018 May;54(2):76-87. doi: 10.1016/j.jdsr.2017.11.002. Epub 2017 Dec 11. Jpn Dent Sci Rev. 2018. PMID: 29755618 Free PMC article. Review.
-
The Influence of Various Photoinitiators on the Properties of Commercial Dental Composites.Polymers (Basel). 2021 Nov 17;13(22):3972. doi: 10.3390/polym13223972. Polymers (Basel). 2021. PMID: 34833271 Free PMC article.
MeSH terms
Substances
LinkOut - more resources
Full Text Sources