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Three-dimensional Finite Element Modeling of a Maxillary Premolar Tooth Based on the Micro-CT Scanning: A Detailed Description 被引量:4

Three-dimensional Finite Element Modeling of a Maxillary Premolar Tooth Based on the Micro-CT Scanning: A Detailed Description
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摘要 This study describes the details of how to construct a three-dimensional (3D) finite element model of a maxillary first premolar tooth based on micro-CT data acquisition technique, MIMICS soft- ware and ANSYS software. The tooth was scanned by micro-CT, in which 1295 slices were obtained and then 648 slices were selected for modeling. The 3D surface mesh models of enamel and dentin were created by MIMICS (STL file). The solid mesh model was constructed by ANSYS. After the material properties and boundary conditions were set, a loading analysis was performed to demonstrate the ap- plicableness of the resulting model. The first and third principal stresses were then evaluated. The re- suits showed that the number of nodes and elements of the finite element model were 56 618 and 311801, respectively. The geometric form of the model was highly consistent with that of the true tooth, and the deviation between them was ~).28%. The loading analysis revealed the typical stress patterns in the contour map. The maximum compressive stress existed in the contact points and the maximum tensile stress existed in the deep fissure between the two cusps. It is concluded that by using the micro-CT and highly integrated software, construction of the 3D finite element model with high quality will not be difficult for clinical researchers. This study describes the details of how to construct a three-dimensional (3D) finite element model of a maxillary first premolar tooth based on micro-CT data acquisition technique, MIMICS soft- ware and ANSYS software. The tooth was scanned by micro-CT, in which 1295 slices were obtained and then 648 slices were selected for modeling. The 3D surface mesh models of enamel and dentin were created by MIMICS (STL file). The solid mesh model was constructed by ANSYS. After the material properties and boundary conditions were set, a loading analysis was performed to demonstrate the ap- plicableness of the resulting model. The first and third principal stresses were then evaluated. The re- suits showed that the number of nodes and elements of the finite element model were 56 618 and 311801, respectively. The geometric form of the model was highly consistent with that of the true tooth, and the deviation between them was ~).28%. The loading analysis revealed the typical stress patterns in the contour map. The maximum compressive stress existed in the contact points and the maximum tensile stress existed in the deep fissure between the two cusps. It is concluded that by using the micro-CT and highly integrated software, construction of the 3D finite element model with high quality will not be difficult for clinical researchers.
作者 黄政 陈智
出处 《Journal of Huazhong University of Science and Technology(Medical Sciences)》 SCIE CAS 2013年第5期775-779,共5页 华中科技大学学报(医学英德文版)
关键词 three-dimensional finite element MICRO-CT PREMOLAR MIMICS ANSYS three-dimensional finite element micro-CT premolar MIMICS ANSYS
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  • 1Turner MS, Clough RW, Martin HC, et al. Stiffness and deflection analysis of complex structures. J Aero Sci, 1956,23(9):805-809.
  • 2Thresher RW, Saito GE. The stress analysis of human teeth. J Biomech, 1973,6(5):443-449.
  • 3Farah JW, Craig RG~ Sikarskie DL. Photoelastic and finite element stress analysis of a restored axisymmetric first molar. J Biomech, 1973,6(5):511-520.
  • 4Ausiello P, Rengo S, Davidson CL, et al. Stress distribu- tions in adhesively cemented ceramic and resin-comp-osite Class II inlay restorations: a 3D-FEA study. Dent Mater, 2004,20(9):862-872.
  • 5Cattaneo PM, Dalstra M, Melsen B. The transfer of occlusal forces through the maxillary molars: a finite element study. Am J Orthod Dentofacial Orthop, 2003, 123(4):367-373.
  • 6Tantbirojn D, Versluis A, Pintado MR, et al. Tooth defor- mation patterns in molars after composite restoration. Dent Mater, 2004,20(6):535-542.
  • 7Kowalczyk E Influence of the shape of the layers in photo-cured dental restorations on the shrinkage stress peaks-FEM study. Dent Mater, 2009,25(12):e83-91.
  • 8Shaw AM, Sameshima GT, Vu HV. Mechanical stress generated by orthodontic forces on apical root cementum: a finite element model. Orthod Craniofae Res, 2004,7(2):98-107.
  • 9Ausiello P, Apicella A, Davidson CL. Effect of adhesive layer properties on stress distribution in composite restorations--a 3D finite element analysis. Dent Mater, 2002,18(4):295-303.
  • 10Borcic J, Anic I, Smojver I, et al. 3D finite element model and cervical lesion formation in normal occlusion and in malocclusion. J Oral Rehabil, 2005,32(7):504-510.

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