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Updated: Sep 20, 2025

Quasistatic Mechanical Testing for Computer-Aided Design and Manufacturing Occlusal Veneers Cemented to Milled Dentin Analog Material
Published on: December 20, 2024
Exploring Ductility in Dental Ceramics
L M M Alves1,2, C S Rodrigues1,2, S Vardhaman1,3
1Department of Biomaterials and Biomimetics, New York University College of Dentistry, New York, NY, USA.
Understanding the ductile-brittle threshold in dental ceramics is crucial. Microcontact tests reveal critical loads and dimensions for brittle fracture, guiding machining for improved strength and cost-effective fabrication.
Area of Science:
- Materials Science
- Mechanical Engineering
- Biomaterials
Background:
- Ceramic processing involves two main damage regimes: brittle (crack formation) and ductile (quasiplasticity).
- Brittle damage significantly threatens material strength, necessitating an understanding of ductile-brittle thresholds.
- Contemporary computer-aided design/computer-aided manufacturing (CAD/CAM) dental ceramics require precise machining protocols.
Purpose of the Study:
- To establish the ductile-brittle thresholds for CAD/CAM dental ceramics using microcontact tests.
- To correlate material strength with indentation load and identify critical parameters for damage regimes.
- To explore methods for quantifying ductile shaping conditions for efficient prosthesis fabrication.
Main Methods:
- Controlled microcontact tests utilizing a sharp indenter were performed on dental ceramics.
- Flexural strength (S) was plotted against indentation load (P) to analyze damage regimes.
- Analysis focused on identifying threshold dimensions and loads relevant to grit finishing.
Main Results:
- A steep decline in flexural strength was observed beyond the identified ductile-brittle threshold.
- Threshold dimensions were found to be on the order of 1 µm, with critical contact loads around 1 N.
- These findings are pertinent to practical grit finishing processes in ceramic machining.
Conclusions:
- Understanding and operating within the ductile regime of ceramic shaping offers significant time and cost savings in prosthesis fabrication.
- Reducing grit size, applied load, and depth of cut are key to accessing the ductile regime.
- Analogous S(P) plots, using machining variables instead of load, can quantify critical conditions for ductile shaping.
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