Three Dimensional Mathematical Model of Tooth for Finite Element Analysis

被引:2
作者
Puskar, Tatjana [1 ]
Vasiljevic, Darko [2 ]
Markovic, Dubravka [1 ]
Jevremovic, Danimir [3 ]
Pantelic, Dejan [2 ]
Savic-Sevic, Svetlana [2 ]
Muric, Branka [2 ]
机构
[1] Univ Novi Sad, Sch Med, Dent Clin Vojvodina, Novi Sad 21000, Serbia
[2] Inst Phys, Lab Optoelect & Lasers, Belgrade 11001, Serbia
[3] Univ Belgrade, Sch Dent, Clin Prosthodont, Belgrade, Serbia
关键词
abutment; finite element analysis; biomechanics; stress; deformation; STRESS;
D O I
10.2298/SARH1002019P
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Introduction The mathematical model of the abutment tooth is the starting point of the finite element analysis of stress and deformation of dental structures. The simplest and easiest way is to form a model according to the literature data of dimensions and morphological characteristics of teeth. Our method is based on forming 3D models using standard geometrical forms (objects) in programmes for solid modeling. Objective Forming the mathematical model of abutment of the second upper premolar for finite element analysis of stress and deformation of dental structures. Methods The abutment tooth has a form of a complex geometric object. It is suitable for modeling in programs for solid modeling Solid Works. After analysing the literature data about the morphological characteristics of teeth, we started the modeling dividing the tooth (complex geometric body) into simple geometric bodies (cylinder, cone, pyramid,...). Connecting simple geometric bodies together or substricting bodies from the basic body, we formed complex geometric body, tooth. The model is then transferred into Abaqus, a computational programme for finite element analysis. Transferring the data was done by standard file format for transferring 3D models ACIS SAT. Results Using the programme for solid modeling SolidWorks, we developed three models of abutment of the second maxillary premolar: the model of the intact abutment, the model of the endodontically treated tooth with two remaining cavity walls and the model of the endodontically treated tooth with two remaining walls and inserted post. Conclusion Mathematical models of the abutment made according to the literature data are very similar with the real abutment and the simplifications are minimal. These models enable calculations of stress and deformation of the dental structures. The finite element analysis provides useful information in understanding biomechanical problems and gives guidance for clinical research.
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页码:19 / 25
页数:7
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