Literature DB >> 28333370

Influence of nickel-titanium rotary systems with varying tapers on the biomechanical behaviour of maxillary first premolars under occlusal forces: a finite element analysis study.

S Askerbeyli Örs1, A Serper1.   

Abstract

AIM: To evaluate the effect of three nickel-titanium (Ni-Ti) rotary systems with varying tapers on stress distribution and to analyse potential fracture patterns as well as the volume of fracture-susceptible regions in two-rooted maxillary premolars.
METHODOLOGY: The root canals of three single-rooted premolars were prepared with either HeroShaper (Micro-Mega, Besançon, France) to (size 30, .04 taper), Revo-S (Micro-Mega) to AS30 (size 30, .06 taper) or ProTaper Universal (Dentsply Maillefer, Ballaigues, Switzerland) to F3 (size 30, .09 taper) Ni-Ti files. The three root canals were scanned using micro-computed tomography (μCT) (Skyscan 1174, Skyscan, Kontich, Belgium) and modelled according to the μCT data. An intact tooth model with a root length of 16 mm was also constructed based on μCT images of an extracted maxillary premolar with two roots. New models were constructed by replacing both of the original canals of the intact two-rooted premolar model with the modelled canals prepared with the HeroShaper, Revo-S or ProTaper Universal system. Occlusal forces of 200 N were applied in oblique and vertical directions. Finite element analysis was performed using Abaqus FEA software (Abaqus 6.14, ABAQUS Inc., Providence, RI, USA).
RESULTS: Upon the application of oblique occlusal forces, the palatal external cervical root surface and the bifurcation (palatal side of the buccal root) in tooth models experienced the highest maximum principal (Pmax) stresses. The application of vertical forces resulted in minor Pmax stress values. Models prepared using the ProTaper system exhibited the highest Pmax stress values. The intact models exhibited the lowest Pmax stress values followed by the models prepared with the HeroShaper system.
CONCLUSION: The differences in Pmax stress values amongst the different groups of models were mathematically minimal under normal occlusal forces. Rotary systems with varying tapers might predispose the root fracture on the palatal side of the buccal root and cervical palatal root surface in two-rooted premolars.
© 2017 International Endodontic Journal. Published by John Wiley & Sons Ltd.

Entities:  

Keywords:  3D finite element analysis; maxillary two-rooted premolar; maximum principal stress; occlusal loads

Mesh:

Substances:

Year:  2017        PMID: 28333370     DOI: 10.1111/iej.12770

Source DB:  PubMed          Journal:  Int Endod J        ISSN: 0143-2885            Impact factor:   5.264


  2 in total

1.  Evaluation of Palatal Furcation Groove and Root Canal Anatomy of Maxillary First Premolar: A CBCT and Micro-CT Study.

Authors:  Xiaojing Liu; Meili Gao; Qingxia Bai; Jianping Ruan; Qun Lu
Journal:  Biomed Res Int       Date:  2021-01-08       Impact factor: 3.411

Review 2.  Does Low-Taper Root Canal Shaping Decrease the Risk of Root Fracture? A Systematic Review.

Authors:  Francesco Puleio; Giuseppe Lo Giudice; Angela Militi; Ugo Bellezza; Roberto Lo Giudice
Journal:  Dent J (Basel)       Date:  2022-06-01
  2 in total

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