Effect of restoration technique on stress distribution in roots with flared canals: an FEA study

J Adhes Dent. 2014 Apr;16(2):185-91. doi: 10.3290/j.jad.a30686.

Abstract

Purpose: The aim of this finite element analysis (FEA) study was to test the effect of different restorative techniques on stress distribution in roots with flared canals.

Materials and methods: Five three-dimensional (3D) FEA models that simulated a maxillary incisor with excessive structure loss and flared root canals were created and restored with the following techniques/materials: 1) a prefabricated post: 2) one main and two accessory posts; 3) i-TFC post-core (Sun Medical); 4) the thickness of the root was increased by using composite resin and the root was then restored using a prefabricated post; 5) an anatomic post was created by using composite resin and a prefabricated glass-fiber post. Composite cores and ceramic crowns were created. A 300-N static load was applied at the center of the palatal surface of the tooth to calculate stress distributions. SolidWorks/Cosmosworks structural analysis programs were used for FEA analysis.

Results: The analysis of the von Mises and tensile stress values revealed that prefabricated post, accessory post, and i-TFC post systems showed similar stress distributions. They all showed high stress areas at the buccal side of the root (3.67 MPa) and in the cervical region of the root (> 3.67 MPa) as well as low stress accumulation within the post space (0 to 1 MPa). The anatomic post kept the stress within its body and directed less stress towards the remaining tooth structure.

Conclusion: The creation of an anatomic post may save the remaining tooth structure in roots with flared canals by reducing the stress levels.

MeSH terms

  • Biomechanical Phenomena
  • Ceramics / chemistry
  • Composite Resins / chemistry
  • Computer Simulation
  • Crowns
  • Dental Materials / chemistry
  • Dental Porcelain / chemistry
  • Dental Prosthesis Design
  • Dental Pulp Cavity / pathology*
  • Dental Stress Analysis
  • Dentin / pathology
  • Elastic Modulus
  • Finite Element Analysis*
  • Glass / chemistry
  • Gutta-Percha / chemistry
  • Humans
  • Imaging, Three-Dimensional / methods
  • Incisor / pathology
  • Models, Biological
  • Post and Core Technique* / instrumentation
  • Resin Cements / chemistry
  • Root Canal Filling Materials / chemistry
  • Root Canal Preparation / methods*
  • Stress, Mechanical

Substances

  • Composite Resins
  • Dental Materials
  • IPS e.max Press
  • Resin Cements
  • Root Canal Filling Materials
  • fiberglass
  • Dental Porcelain
  • Gutta-Percha