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Analysis of the Influence of the Thermocycling and the Applied Force on Orthodontic Clear Aligners

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Date 2024 Jan 4
PMID 38173871
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Abstract

The mechanical properties of polyurethane dental aligners have been studied in an oral environment at 37°C and subjected to thermal cycling between 5°C and 55°C for long periods of time at different mechanical stresses. The aim is to determine the efficacy of the orthodontic aligner at different stress levels, the effect of thermal cycling with therapy time on tooth position correction. Sixty aligners with the same design were studied applying tensions of 0, 3 and 30 N and determining the deformation at different times from 1 to 760 h. Half of these aligners were subjected to stresses submerged in artificial saliva at 37°C and the other half were subjected to thermal cycles between 2°C and 55°C in salivary medium. Deformation was determined using a high-resolution stereo magnifier and ImageJ image analysis software. Water adsorption by the polyurethane was determined at the different test times. The results showed that in the unloaded aligners there is no appreciable deformation, but with thermal cycling there is a light shrinkage of the aligner due to the semi-crystallization process (ordering of polymeric chains) of the polyurethane. When applying loads of 3 and 30 N, creep curves with constant deformation transition zones can be seen. The transition zones decrease as the applied mechanical load increases. In addition, the significant effect of thermal cycling on the reduction of the transition zone of the aligners has been demonstrated. The transition zones are optimal for dental correction as constant stresses are exerted for tooth movement. The effect of thermal cycling shortens the constant deformation zone and reduces tooth alignment time. It was observed that the absorption of water in the aligner is constant after 1 h of immersion and does not exceed 0.4% by weight of absorbed water.

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References
1.
Han J . A comparative study of combined periodontal and orthodontic treatment with fixed appliances and clear aligners in patients with periodontitis. J Periodontal Implant Sci. 2016; 45(6):193-204. PMC: 4698945. DOI: 10.5051/jpis.2015.45.6.193. View

2.
Hennessy J, Garvey T, Al-Awadhi E . A randomized clinical trial comparing mandibular incisor proclination produced by fixed labial appliances and clear aligners. Angle Orthod. 2016; 86(5):706-12. PMC: 8600838. DOI: 10.2319/101415-686.1. View

3.
Espinar-Escalona E, Llamas-Carreras J, Barrera-Mora J, Abalos-Lasbrucci C, Gil-Mur F . Effect of temperature on the orthodontic clinical applications of NiTi closed-coil springs. Med Oral Patol Oral Cir Bucal. 2013; 18(4):e721-4. PMC: 3731104. DOI: 10.4317/medoral.19073. View

4.
Godoy-Gallardo M, Manzanares-Cespedes M, Sevilla P, Nart J, Manzanares N, Manero J . Evaluation of bone loss in antibacterial coated dental implants: An experimental study in dogs. Mater Sci Eng C Mater Biol Appl. 2016; 69:538-45. DOI: 10.1016/j.msec.2016.07.020. View

5.
Tartaglia G, Mapelli A, Maspero C, Santaniello T, Serafin M, Farronato M . Direct 3D Printing of Clear Orthodontic Aligners: Current State and Future Possibilities. Materials (Basel). 2021; 14(7). PMC: 8038630. DOI: 10.3390/ma14071799. View