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- 2016
新型镍钛器械循环疲劳抗性的研究
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Abstract:
摘要 目的:运用金属模拟弯曲根管观察四种镍钛器械循环疲劳抗性能力的差异,为临床治疗提供参考资料。方法:将30/.06Hyflex CM、TF、K3XF和K3各30支,放入弯曲度为60°,曲率半径为3 mm的金属弯曲根管内,体外模拟器械抗疲劳折断的过程,计算折断时器械旋转的圈数,并用扫描电镜观察器械断面的特征。结果:Hyflex CM、TF、K3XF的循环疲劳折断旋转圈数显著高于K3。结论:经过热处理的新型镍钛器械Hyflex CM、TF、K3XF较传统镍钛器械K3在抗循环疲劳能力方面有明显优势
[1] | Shen Y, Zhou HM, Zheng YF, et al. Metallurgical characterization of controlled memory wire nickel-titanium rotary instruments [J]. J Endod, 2011, 37(11)∶1566-71 |
[2] | Alapati SB, Brantley WA, Iijima M, et al. Metallurgical characterization of a new nickel-titanium wire for rotary endodontic instruments Differential scanning calorimetric studies of nickel-titanium rotary endodontic instruments [J]. J Endod, 2009, 35(11)∶1589-93 |
[3] | Kim HC, Kwak SW, Cheung GS, et al. Cyclic fatigue and torsional resistance of two new nickel-titanium instruments used in reciprocation motion: Reciproc versus WaveOne [J]. J Endod, 2012, 38(4)∶541-4 |
[4] | Kim HC, Yum J, Hur B, et al. Cyclic fatigue and fracture characteristics of ground and twisted nickel-titanium rotary files [J]. J Endod, 2010, 36(1)∶147-52 |
[5] | Oh SR, Chang SW, Lee Y, et al. A comparison of nickel-titanium rotary instruments manufactured using different methods and cross-sectional areas: ability to resist cyclic fatigue [J]. Oral Surg Oral Med Oral Pathol Oral Radiol Endod, 2010, 109(4)∶622-8 |
[6] | Larsen CM, Watanabe I, Glickman GN, et al. Cyclic fatigue analysis of a new generation of nickel titanium rotary instruments [J]. J Endod, 2009, 35(3)∶401-3 |
[7] | Parashos P, Messer HH. Rotary NiTi instrument fracture and its consequences [J] . J Endod, 2006, 32(11)∶1031-43 |
[8] | 李宗莉,徐冬冬,彭彬.新型镍钛器械HyflexCM的研究进展[J].口腔医学研究,2015,31(12)∶1267-70 |
[9] | Brantley WA, Svec TA, Iijima M, et al. Differential scanning calorimetric studies of nickel-titanium rotary endodontic instruments [J]. J Endod, 2002, 28(8)∶567-72 |
[10] | Shen Y, Zhou HM, Zheng YF, et al. Current challenges and concepts of the thermomechanical treatment of nickel-titanium instruments [J]. J Endod, 2013, 39(2)∶163-72 |
[11] | Gambarini G, Grande N, Plotino G, et al. Fatigue resistance of engine-driven rotary nickel-titanium instruments produced by new manufacturing methods [J]. J Endod, 2008, 34(8)∶1003-5 |
[12] | Elnaghy AM. Cyclic fatigue resistance of ProTaper Next nickel-titanium rotary files [J]. Int Endod J, 2014, 47(11)∶1034-9 |
[13] | Shen Y, Qian W, Abtin H, et al. Effect of environment on fatigue failure of controlled memory wire nickel-titanium rotary instruments [J]. J Endod, 2012, 38(3)∶376-80 |
[14] | Bouska J, Justman B, Williamson A, et al. Resistance to cyclic fatigue failure of a new endodontic rotary file [J]. J Endod, 2012, 38(5)∶667-9 |
[15] | Plotino G, Costanzo A, Grande NM, et al. Experimental evaluation on the influence of autoclave sterilization on the cyclic fatigue of new nickel-titanium rotary instruments [J]. J Endod, 2012, 38(2)∶222-5 |
[16] | Plotino G, Testarelli L, Al-Sudani D, et al. Fatigue resistance of rotary instruments manufactured using different nickel-titanium alloys: a comparative study [J]. Odontology, 2014, 102(1)∶31-5 |