| Literature DB >> 29984393 |
Francesca Gazzani1, Chiara Pavoni2,3, Aldo Giancotti2, Paola Cozza2,3, Roberta Lione2,3.
Abstract
BACKGROUND: To evaluate load and stress distribution on Delaire facemask (FM) during maxillary protraction in class III growing patients by means of finite element analysis (FEA). A three-dimensional geometry of a Delaire FM was reconstructed from the original CAD 3D prototype, using software package (ANSYS 5.7). FM presented forehead and chin supports and stainless steel framework characterized by two lateral vertical bars connected to a crossbar with two pawls for elastic attachment. Two traction intensities (7.8 and 9.8 N) were applied on the FM pawls along three different downward inclined directions with respect to the occlusal plane (0°, 30°, or 50°, respectively). Resulting stresses and deformations were then tested through the von Mises yield criterion in order to underline the FM wear performance.Entities:
Keywords: Class III malocclusion; Delaire face mask; FEM analysis; Maxillary protraction
Mesh:
Year: 2018 PMID: 29984393 PMCID: PMC6035904 DOI: 10.1186/s40510-018-0217-1
Source DB: PubMed Journal: Prog Orthod ISSN: 1723-7785 Impact factor: 2.750
Fig. 13D model of Delaire FM designed by using ANSYS 5.7
Mechanical proprieties of materials
| Materials | Tensile strength (N/mm2) | Young’s modulus |
|---|---|---|
| ABS plastics | 46 | 2100 |
| Stainless steel | 800 | 200,000 |
ABS Acrilonitrile butadiene stirene; MPa MegaPascal. 1MP a is equivalent to 1 N/mm2
Fig. 23D model meshes. Twenty-eight thousand six hundred ninety-six nodes and 40,178 elements characterized the numerical model
Fig. 3Stress distribution on the FM structure. Greater stresses were assessed on the lateral bars of the structure
Fig. 4Stress distribution with traction load of 7.8 Newton applied on FM model. The force direction was progressively inclined to the occlusal plane of 0° (a), 30° (b), and 50° (c)
Fig. 5Stress distribution with traction load of 9.8 Newton applied on FM model. The force direction was progressively inclined to the occlusal plane of 0° (a), 30° (b), and 50° (c)
Elastic strain energy calculation after application of two traction intensities tested (7.8 and 9.8 N) with an inclination of 0° with respect to the occlusal plane
| Loads (N) | Inclination | Total elastic energy [mJ] | Energy on ABS supports [mJ] | Energy on metallic lateral bars [mJ] | Energy on metallic vertical bar [mJ] |
|---|---|---|---|---|---|
| 7.8 | 0° | 1,4545 | 0,0090 | 0,8731 | 0,5724 |
| 9.8 | 0° | 2,2762 | 0,0140 | 1,3643 | 0,8944 |
N Newton; mJ milliJoule, 1 mJ is equivalent to 0.001 J (Joule); ABS Acrilonitrile butadiene stirene