Skip to main content
Top
Published in: Journal of Orofacial Orthopedics / Fortschritte der Kieferorthopädie 3/2023

28-11-2022 | Original Article

Comparative assessment of frictional forces between differently designed esthetic brackets during simulated canine retraction

Authors: Dr. Ahmed Youssef, Dr. Tarek El-Bialy, Professor Christoph Bourauel

Published in: Journal of Orofacial Orthopedics / Fortschritte der Kieferorthopädie | Special Issue 3/2023

Login to get access

Abstract

Objectives

To evaluate force loss due to friction (FR) with an emphasis on esthetic brackets and their design differences during simulated canine retraction.

Materials and methods

The tested brackets were round and sharp-cornered conventional-ligating brackets and round-cornered self-ligating brackets. The tested archwires were stainless steel (0.018 × 0.025″ and 0.019 × 0.025″, and 0.018″) archwires. A total of 90 bracket–archwire combinations in 9 equally-sized groups (n = 10) were analyzed. Canine retraction was experimentally simulated in a biomechanical set-up utilizing the custom-made orthodontic measurement and simulation system (OMSS) using a NiTi coil spring that delivered a constant force of 1 N. The simulated retraction path was up to 4 mm. FR was compared among groups using the Welch t‑test. Significance level (α) was set to 0.05.

Results

The round-cornered conventional-ligating bracket exhibited the least FR (28.6 ± 5.4%), while there were no significant differences in FR between the round-cornered conventional-ligating bracket and the round-cornered self-ligating bracket with 0.018″ stainless steel wires. However, the round-cornered self-ligating bracket exhibited the least FR (34.9 ± 5.1% and 39.3 ± 4.6%) with 0.018 × 0.025″ and 0.019 × 0.025″ stainless steel archwires, respectively. The sharp-cornered conventional-ligating bracket showed the highest FR of 72.4 ± 3.0% among the bracket systems tested in this study.

Conclusions

The round-cornered conventional-ligating bracket showed less FR when compared to sharp-cornered conventional-ligating bracket. Conversely, the round-cornered conventional-ligating bracket exhibited greater FR when compared to the round-cornered self-ligating bracket, with an exception with respect to the 0.018″ wire. In general, FR increased with increased wire dimension.
Literature
1.
go back to reference Kusy R (1999) Influence of archwire and bracket dimensions on sliding mechanics: derivations and determinations of the critical contact angles for binding. Eur J Orthod 21:199–208CrossRefPubMed Kusy R (1999) Influence of archwire and bracket dimensions on sliding mechanics: derivations and determinations of the critical contact angles for binding. Eur J Orthod 21:199–208CrossRefPubMed
2.
go back to reference Kusy RP (2000) Ongoing innovations in biomechanics and materials for the new millennium. Angle Orthod 70:366–376PubMed Kusy RP (2000) Ongoing innovations in biomechanics and materials for the new millennium. Angle Orthod 70:366–376PubMed
3.
go back to reference Kusy RP, Whitley JQ (1997) Friction between different wire-bracketconfigurations and materials. Semin Orthod 3:166–177CrossRefPubMed Kusy RP, Whitley JQ (1997) Friction between different wire-bracketconfigurations and materials. Semin Orthod 3:166–177CrossRefPubMed
4.
go back to reference Montasser MA, El-Bialy T, Keilig L et al (2014) Force loss in archwire-guided tooth movement of conventional and self-ligating brackets. Eur J Orthod 36:31–38CrossRefPubMed Montasser MA, El-Bialy T, Keilig L et al (2014) Force loss in archwire-guided tooth movement of conventional and self-ligating brackets. Eur J Orthod 36:31–38CrossRefPubMed
5.
go back to reference Articolo LC, Kusy RP (1999) Influence of angulation on the resistance to sliding in fixed appliances. Am J Orthod Dentofacial Orthop 115:39–51CrossRefPubMed Articolo LC, Kusy RP (1999) Influence of angulation on the resistance to sliding in fixed appliances. Am J Orthod Dentofacial Orthop 115:39–51CrossRefPubMed
6.
go back to reference Bourauel C, Drescher D, Thier M (1992) An experimental apparatus for the simulation of three-dimensional movements in orthodontics. J Biomed Eng 14:371–378CrossRefPubMed Bourauel C, Drescher D, Thier M (1992) An experimental apparatus for the simulation of three-dimensional movements in orthodontics. J Biomed Eng 14:371–378CrossRefPubMed
7.
go back to reference Phukaoluan A, Khantachawana A, Kaewtatip P et al (2017) Comparison of friction forces between stainless orthodontic steel brackets and TiNi wires in wet and dry conditions. Int Orthod 15:13–24PubMed Phukaoluan A, Khantachawana A, Kaewtatip P et al (2017) Comparison of friction forces between stainless orthodontic steel brackets and TiNi wires in wet and dry conditions. Int Orthod 15:13–24PubMed
8.
go back to reference Bednar JR, Gruendeman GW, Sandrik JL (1991) A comparative study of frictional forces between orthodontic brackets and arch wires. Am J Orthod Dentofacial Orthop 100:513–522CrossRefPubMed Bednar JR, Gruendeman GW, Sandrik JL (1991) A comparative study of frictional forces between orthodontic brackets and arch wires. Am J Orthod Dentofacial Orthop 100:513–522CrossRefPubMed
10.
go back to reference Yamaguchi K, Nanda RS, Morimoto N et al (1996) A study of force application, amount of retarding force, and bracket width in sliding mechanics. Am J Orthod Dentofac Orthop 109:50–56CrossRef Yamaguchi K, Nanda RS, Morimoto N et al (1996) A study of force application, amount of retarding force, and bracket width in sliding mechanics. Am J Orthod Dentofac Orthop 109:50–56CrossRef
11.
go back to reference El-Bialy T, Alobeid A, Dirk C et al (2019) Comparison of force loss due to friction of different wire sizes and materials in conventional and new self-ligating orthodontic brackets during simulated canine retraction. J Orofac Orthop 80:68–78CrossRefPubMed El-Bialy T, Alobeid A, Dirk C et al (2019) Comparison of force loss due to friction of different wire sizes and materials in conventional and new self-ligating orthodontic brackets during simulated canine retraction. J Orofac Orthop 80:68–78CrossRefPubMed
12.
go back to reference Griffiths HS, Sherriff M, Ireland AJ (2005) Resistance to sliding with 3 types of elastomeric modules. Am J Orthod Dentofac Orthop 127:670–675CrossRef Griffiths HS, Sherriff M, Ireland AJ (2005) Resistance to sliding with 3 types of elastomeric modules. Am J Orthod Dentofac Orthop 127:670–675CrossRef
13.
go back to reference Khambay B (2004) Evaluation of methods of archwire ligation on frictional resistance. Eur J Orthod 26:327–332CrossRefPubMed Khambay B (2004) Evaluation of methods of archwire ligation on frictional resistance. Eur J Orthod 26:327–332CrossRefPubMed
14.
go back to reference Kim T‑K, Kim K‑D, Baek S‑H (2008) Comparison of frictional forces during the initial leveling stage in various combinations of self-ligating brackets and archwires with a custom-designed typodont system. Am J Orthod Dentofacial Orthop 133:187.e115–187.e124CrossRef Kim T‑K, Kim K‑D, Baek S‑H (2008) Comparison of frictional forces during the initial leveling stage in various combinations of self-ligating brackets and archwires with a custom-designed typodont system. Am J Orthod Dentofacial Orthop 133:187.e115–187.e124CrossRef
15.
go back to reference Henao SP, Kusy RP (2005) Frictional evaluations of dental typodont models using four self-ligating designs and a conventional design. Angle Orthod 75:75–85PubMed Henao SP, Kusy RP (2005) Frictional evaluations of dental typodont models using four self-ligating designs and a conventional design. Angle Orthod 75:75–85PubMed
16.
go back to reference Drescher D, Bourauel C, Schumacher HA (1990) The loss of force by friction in arch-guided tooth movement. Fortschr Kieferorthop 51:99–105CrossRefPubMed Drescher D, Bourauel C, Schumacher HA (1990) The loss of force by friction in arch-guided tooth movement. Fortschr Kieferorthop 51:99–105CrossRefPubMed
19.
go back to reference Loftus BP, Ârtun J, Nicholls JI et al (1999) Evaluation of friction during sliding tooth movement in various bracket-arch wire combinations. Am J Orthod Dentofacial Orthop 116:336–345CrossRefPubMed Loftus BP, Ârtun J, Nicholls JI et al (1999) Evaluation of friction during sliding tooth movement in various bracket-arch wire combinations. Am J Orthod Dentofacial Orthop 116:336–345CrossRefPubMed
24.
go back to reference Husmann P, Bourauel C, Wessinger M et al (2002) The frictional behavior of coated guiding archwires. J Orofac Orthop 63:199–211CrossRefPubMed Husmann P, Bourauel C, Wessinger M et al (2002) The frictional behavior of coated guiding archwires. J Orofac Orthop 63:199–211CrossRefPubMed
26.
go back to reference Halazonetis DJ (2007) Friction might increase anchorage loading. Am J Orthod Dentofacial Orthop 131:699–700CrossRefPubMed Halazonetis DJ (2007) Friction might increase anchorage loading. Am J Orthod Dentofacial Orthop 131:699–700CrossRefPubMed
Metadata
Title
Comparative assessment of frictional forces between differently designed esthetic brackets during simulated canine retraction
Authors
Dr. Ahmed Youssef
Dr. Tarek El-Bialy
Professor Christoph Bourauel
Publication date
28-11-2022
Publisher
Springer Medizin
Published in
Journal of Orofacial Orthopedics / Fortschritte der Kieferorthopädie / Issue Special Issue 3/2023
Print ISSN: 1434-5293
Electronic ISSN: 1615-6714
DOI
https://doi.org/10.1007/s00056-022-00433-3

Other articles of this Special Issue 3/2023

Journal of Orofacial Orthopedics / Fortschritte der Kieferorthopädie 3/2023 Go to the issue