An evaluation of the transition temperature range of super-elastic orthodontic NiTi springs using differential scanning calorimetry
Author(s) -
O. Barwart
Publication year - 1999
Publication title -
european journal of orthodontics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.252
H-Index - 84
eISSN - 1460-2210
pISSN - 0141-5387
DOI - 10.1093/ejo/21.5.497
Subject(s) - differential scanning calorimetry , nickel titanium , materials science , austenite , martensite , hysteresis , coil spring , atmospheric temperature range , transition temperature , diffusionless transformation , continuous cooling transformation , metallurgy , calorimetry , transformation (genetics) , spring (device) , composite material , shape memory alloy , thermodynamics , microstructure , condensed matter physics , chemistry , bainite , physics , superconductivity , biochemistry , gene
Differential scanning calorimetry (DSC) was used to determine the transition temperature ranges (TTR) of four types of super-elastic orthodontic nickel-titanium coil springs (Sentalloy). A knowledge of the TTR provides information on the temperature at which a NiTi wire or spring can assume superelastic properties and when this quality disappears. The spring types in this study can be distinguished from each other by their characteristic TTR during cooling and heating. For each tested spring type a characteristic TTR during heating (austenite transformation) and cooling (martensite transformation) was evaluated. The hysteresis of the transition temperature, found between cooling and heating, was 3.4-5.2 K. Depending on the spring type the austenite transformation started (As) at 9.7-17.1 degrees C and finished (Af) at 29.2-37 degrees C. The martensite transformation starting temperature (Ms) was evaluated at 32.6-25.4 degrees C, while Mf (martensite transformation finishing temperature) was 12.7-6.5 degrees C. The results show that the springs become super-elastic when the temperature increases and As is reached. They undergo a loss of super-elastic properties and a rapid decrease in force delivery when they are cooled to Mf. For the tested springs, Mf and As were found to be below room temperature. Thus, at room temperature and some degrees lower, all the tested springs exert super-elastic properties. For orthodontic treatment this means the maintenance of super-elastic behaviour, even when mouth temperature decreases to about room temperature as can occur, for example, during meals.
Accelerating Research
Robert Robinson Avenue,
Oxford Science Park, Oxford
OX4 4GP, United Kingdom
Address
John Eccles HouseRobert Robinson Avenue,
Oxford Science Park, Oxford
OX4 4GP, United Kingdom