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不锈钢、钛钼合金和铜镍钛丝在金属自锁托槽中的扭矩表达比较。

A comparison of torque expression between stainless steel, titanium molybdenum alloy, and copper nickel titanium wires in metallic self-ligating brackets.

机构信息

Orthodontic Graduate Program, School of Dentistry, University of Alberta, Edmonton, AB, Canada.

出版信息

Angle Orthod. 2010 Sep;80(5):884-9. doi: 10.2319/102809-604.1.

Abstract

OBJECTIVE

The force moment providing rotation of the tooth around the x-axis (buccal-lingual) is referred to as torque expression in orthodontic literature. Many factors affect torque expression, including the wire material characteristics. This investigation aims to provide an experimental study into and comparison of the torque expression between wire types.

MATERIALS AND METHODS

With a worm-gear-driven torquing apparatus, wire was torqued while a bracket mounted on a six-axis load cell was engaged. Three 0.019 x 0.0195 inch wire (stainless steel, titanium molybdenum alloy [TMA], copper nickel titanium [CuNiTi]), and three 0.022 inch slot bracket combinations (Damon 3MX, In-Ovation-R, SPEED) were compared.

RESULTS

At low twist angles (<12 degrees), the differences in torque expression between wires were not statistically significant. At twist angles over 24 degrees, stainless steel wire yielded 1.5 to 2 times the torque expression of TMA and 2.5 to 3 times that of nickel titanium (NiTi). At high angles of torsion (over 40 degrees) with a stiff wire material, loss of linear torque expression sometimes occurred.

CONCLUSIONS

Stainless steel has the largest torque expression, followed by TMA and then NiTi.

摘要

目的

在正畸文献中,牙齿绕 X 轴(颊舌向)旋转的力臂被称为转矩表达。许多因素会影响转矩表达,包括线材料特性。本研究旨在对不同类型的弓丝进行转矩表达的实验研究和比较。

材料和方法

使用蜗轮驱动的扭力装置,在装有六轴测力传感器的托槽上对弓丝进行扭力。比较了三种 0.019 x 0.0195 英寸的弓丝(不锈钢、钛钼合金[TMA]、铜镍钛[CuNiTi])和三种 0.022 英寸槽托槽组合( Damon 3MX、In-Ovation-R、SPEED)。

结果

在低扭转角度(<12 度)下,各弓丝之间的转矩表达差异无统计学意义。在扭转角度超过 24 度时,不锈钢丝产生的转矩表达分别是 TMA 的 1.5 到 2 倍和镍钛的 2.5 到 3 倍。在高扭转角度(超过 40 度)下,使用刚性线材时,线性转矩表达有时会丢失。

结论

不锈钢具有最大的转矩表达,其次是 TMA,然后是镍钛。

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