| Literature DB >> 28680545 |
Yu Lung Tang1, Jee-Hwan Kim2, June-Sung Shim2, Sunjai Kim3.
Abstract
PURPOSE: The purpose of this study was to evaluate the influence of different coping thicknesses and veneer ceramic cooling rates on the failure load of zirconia-ceramic crowns.Entities:
Keywords: Cooling rate; Coping thickness; Failure; Zirconia
Year: 2017 PMID: 28680545 PMCID: PMC5483400 DOI: 10.4047/jap.2017.9.3.152
Source DB: PubMed Journal: J Adv Prosthodont ISSN: 2005-7806 Impact factor: 1.904
Fig. 1A schematic image of an abutment model.
Fig. 2A zirconia-ceramic crown with 1.5 mm coping thickness (A) and 0.5 mm coping thickness (B). Yellow color represents zirconia coping and blue color represents veneering ceramic.
Fig. 3A monotonic load was applied 2 mm off center (2 mm from line-angle) of occlusal surface of each zirconia-ceramic crown.
The means and standard deviations of the failure loads for 4 study groups
| Cooling rate | Coping thickness (mm) | Mean (Newtons) | Standard deviation (Newtons) | Number of specimens |
|---|---|---|---|---|
| Conventional | 0.5 | 2336.5 | 1378.0 | 10 |
| 1.5 | 2724.9 | 1411.2 | 10 | |
| Slow | 0.5 | 2089.7 | 663.4 | 10 |
| 1.5 | 5737.4 | 1733.1 | 10 |
Two-way analysis of variance for the failure loads
| Source | Type III sum of squares | df | Mean square | F | Significance |
|---|---|---|---|---|---|
| Corrected model | 86404244.201 | 3 | 28801414.734 | 15.708 | .000 |
| Intercept | 415277200.842 | 1 | 415277200.842 | 226.494 | < .001 |
| Cooling | 19122395.514 | 1 | 19122395.514 | 10.429 | .003 |
| Thickness | 40723784.862 | 1 | 40723784.862 | 22.211 | < .001 |
| Cooling thickness | 26558063.826 | 1 | 26558063.826 | 14.485 | .001 |
| Error | 66006183.136 | 36 | 1833505.087 | ||
| Total | 567687628.179 | 40 | |||
| Corrected total | 152410427.337 | 39 |
Fig. 4The fracture pattern of zirconia-ceramic crowns from each group. (A) 0.5-mm coping under the conventional cooling rate. (B) 0.5-mm coping under slow cooling. (C) 1.5-mm coping under conventional cooling, (D) 1.5-mm coping under slow cooling.
The effect of coping thickness under the different cooling rates
| Cooling rate | Coping thickness | Coping thickness | Mean difference | Standard error | 95% Confidence | ||
|---|---|---|---|---|---|---|---|
| Lower limit | Upper limit | ||||||
| Conventional | 0.5 | 1.5 | −388.349 | 605.558 | .525 | −1616.478 | 839.780 |
| 1.5 | 0.5 | 388.349 | 605.558 | .525 | 839.780 | 1616.478 | |
| Slow | 0.5 | 1.5 | −3647.678 | 605.558 | .001 | −4875.807 | −2419.549 |
| 1.5 | 0.5 | 3647.678 | 605.558 | .001 | 2419.549 | 4875.807 | |
The effect of the cooling rate under different coping thicknesses
| Thickness | Cooling | Cooling | Mean difference | Standard error | 95% Confidence | ||
|---|---|---|---|---|---|---|---|
| Lower limit | Upper limit | ||||||
| 0.5 | Conventional | Slow | 246.827 | 605.558 | .686 | −981.302 | 1474.956 |
| Slow | Conventional | −246.827 | 605.558 | .686 | −1474.956 | 981.302 | |
| 1.5 | Conventional | Slow | −3012.502 | 605.558 | .001 | −4240.631 | −1784.373 |
| Slow | Conventional | 3012.502 | 605.558 | .001 | 1784.373 | 4240.631 | |