A statistical model of the rate-dependent fracture behavior of dental polymer-based biomaterials

Dent Mater J. 2023 Mar 30;42(2):177-186. doi: 10.4012/dmj.2022-163. Epub 2022 Dec 3.

Abstract

An insight into the fracture behavior of dental polymer-based biomaterials is important to reduce safety hazards for patients. The crack-driven fracture process of polymers is largely stochastic and often dependent on the loading rate. Therefore, in this study, a statistical model was developed based on three-point bending tests on dental polymethyl methacrylate at different loading rates. The fracture strains were investigated (two-parameter Weibull distribution (2PW)) and the rate-dependency of the 2PW parameters were examined (Cramér-von Mises test (CvM)), arriving at the conclusion that there could be a limiting distribution for both quasi-static and dynamic failure. Based on these findings, a phenomenological model based on exponential functions was developed, which would further facilitate the determination of the failure probability of the material at a certain strain with a given strain rate. The model can be integrated into finite element solvers to consider the stochastic fracture behavior in simulations.

Keywords: Biocompatible materials; Dental materials; Fracture strain; Statistical models; Weibull statistics.

MeSH terms

  • Biocompatible Materials*
  • Dental Stress Analysis
  • Finite Element Analysis
  • Humans
  • Materials Testing
  • Models, Statistical
  • Polymers*
  • Polymethyl Methacrylate
  • Stress, Mechanical

Substances

  • Biocompatible Materials
  • Polymers
  • Polymethyl Methacrylate