Related Experiment Video
Updated: Jun 25, 2026

Quasistatic Mechanical Testing for Computer-Aided Design and Manufacturing Occlusal Veneers Cemented to Milled Dentin Analog Material
Published on: December 20, 2024
Unstable cracking (chipping) of veneering porcelain on all-ceramic dental crowns and fixed partial dentures
1Biomaterials Laboratory, Faculty of Dentistry, University of Sydney, Sydney Dental Hospital, 2 Chalmers St., Surry Hills, NSW 2010, Australia. mswain@mail.usyd.edu.au
Abstract:
The central argument of this study is that residual stresses developed during the preparation of all-ceramic crowns and fixed partial dentures coupled with contact-induced cracking are the origin of the excessive chipping observed in clinical applications. The aim of this paper is to provide a simple basic analysis of the causes of residual stress development in ceramics and identify the key thermo-mechanical parameters responsible for these stresses and the resultant contact-induced failure. For simplicity, a bilayer planar geometry is considered. The key outcomes are the critical role of thermo-elastic properties and the thickness of the structures. The approach is then used to evaluate the propensity for unstable cracking of a range of crown structures, including substructures of a range of ceramics, and to show that two specific combinations are most prone to this behaviour, namely porcelain fused to glass ceramics and zirconia substrates. In addition, a simple approach for the minimization of the likelihood for such behaviour and chipping is proposed.
Related Concept Videos
Microcracking in Concrete
Veneer
Other veneering techniques include plain-slicing, quarter-slicing, and rift-slicing. These...
Mortar Joint Deterioration in Masonry
The...
Porosity in Cement Paste
The balance of water to cement in the mix is critical—it...
Unsoundness of Aggregate due to Volume Change
Types of Non-structural Cracks in Concrete
Plastic shrinkage cracks typically form within hours after the concrete is poured. The concrete's surface dries faster than the bottom, creating tensile stress that the still-plastic concrete cannot withstand, leading to diagonal or randomly patterned cracks on the concrete surface.
Plastic...