The relationship between physical parameters and wear of dental composites

被引:58
作者
Heintze, S. D. [1 ]
Zellweger, G. [1 ]
Zappini, G. [1 ]
机构
[1] R&D Ivoclar Vivadent, Schaan, Liechtenstein
关键词
wear formula; dental composites; Vickers hardness; fracture toughness; modulus of elasticity;
D O I
10.1016/j.wear.2006.12.010
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Materials and methods: A wear method was developed that mainly simulates attrition wear using a commercially available chewing simulator (Willytec, Germany). In this test, a standardized stylus made of pressable ceramic (Empress) hits flat specimens 120,000 times with a 5 kg weight, a descent speed of 60 mm/s and a lateral movement of 0.7 mm with a speed of 40 mm/s under constant exchange of water at different temperatures (325 x 5 degrees C/55 degrees C). The volume loss was measured on plaster replicas with the Laserscan 3D (Willytec) and the Match 3D software. Twenty-four experimental and commercial composites (n = 8) were tested with a volumetric wear range of between 5.5 and 147 x 10(-2) mm(3). On standardized specimens made of the same composites, the Vickers hardness (H), elastic modulus (E) and fracture toughness (K-1c) were measured. The mean particle size (d) and volume content (v(f)) of the inorganic filler were evaluated. Furthermore, a differentiation was made between the main filler with the largest mean size (d(1), v(f.1)) and the total filler content (v(f.tot)). Results: The best linear regression curve fit with an adjusted R-2 of 0.908 was found for wear index = d(1)(0.6) /K(1c)v(f.1)vf.(tot)(E/H) Conclusions: The good mathematical fit of the formula may be an indication that the wear method is based on physical properties and that it provides a highly reproducible standard. (C) 2007 Elsevier B.V. All rights reserved.
引用
收藏
页码:1138 / 1146
页数:9
相关论文
共 44 条
[11]   OCCLUSAL FORCES DURING CHEWING AND SWALLOWING AS MEASURED BY SOUND-TRANSMISSION [J].
GIBBS, CH ;
MAHAN, PE ;
LUNDEEN, HC ;
BREHNAN, K ;
WALSH, EK ;
HOLBROOK, WB .
JOURNAL OF PROSTHETIC DENTISTRY, 1981, 46 (04) :443-449
[12]   CONTRIBUTION TO THEORY OF MECHANICAL WEAR [J].
HALLING, J .
WEAR, 1975, 34 (03) :239-249
[13]   The protective nature of the salivary pellicle [J].
Hannig, M .
INTERNATIONAL DENTAL JOURNAL, 2002, 52 (05) :417-423
[14]   A comparison of three different methods for the quantification of the in vitro wear of dental materials [J].
Heintze, S. D. ;
Cavalleri, A. ;
Forjanic, M. ;
Zellweger, G. ;
Rousson, V. .
DENTAL MATERIALS, 2006, 22 (11) :1051-1062
[15]   How to qualify and validate wear simulation devices and methods [J].
Heintze, S. D. .
DENTAL MATERIALS, 2006, 22 (08) :712-734
[16]   Influence of the antagonist material on the wear of different composites using two different wear simulation methods [J].
Heintze, SD ;
Zellweger, G ;
Cavalleri, A ;
Ferracane, J .
DENTAL MATERIALS, 2006, 22 (02) :166-175
[17]   Wear of ten dental restorative materials in five wear simulators - Results of a round robin test [J].
Heintze, SD ;
Zappini, G ;
Rousson, V .
DENTAL MATERIALS, 2005, 21 (04) :304-317
[18]   ROLE OF FRACTURE TOUGHNESS IN WEAR OF METALS [J].
HORNBOGEN, E .
WEAR, 1975, 33 (02) :251-259
[19]  
Hutchings I.M, 1992, TRIBOLOGY FRICTION W, P82
[20]   A regression analysis of filler particle content to predict composite wear [J].
Jaarda, MJ ;
Wang, RF ;
Lang, BR .
JOURNAL OF PROSTHETIC DENTISTRY, 1997, 77 (01) :57-67