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过氧乙酸对热处理镍钛机用根管锉动态循环疲劳的影响

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参考文献

[1] L. D. Henao, R. D. Compagni, A. Turolla, and M. Antonelli, “Influence of inorganic and organic compounds on the decay of peracetic acid in wastewater disinfection,” Chemical Engineering Journal, vol. 337, pp. 133–142, 2018.

 [2] A. A. Alghamdi, E. S. Abdel-Halim, and Z. A. Al-Othman, “Low-temperature bleaching of cotton cellulose using an ultrasound-assisted tetraacetylethylenediamine/hydrogen peroxide/triethanolamine system,” BioResources, vol. 11, no. 1, pp. 2784–2796, 2016.

 [3] W. H. Coleman, D. Chen, Y.-q. Li, A. E. Cowan, and P. Setlow, “How moist heat kills spores of Bacillus subtilis,” Journal of Bacteriology, vol. 189, no. 23, pp. 8458–8466, 2007.

 [4] M. R. Carvalho, M. A. dos Santos da Silva, C. A. de Sousa Brito et al., “Comparison of antimicrobial activity between chemical disinfectants on contaminated orthodontic pliers,” 5e Journal of Contemporary Dental Practice, vol. 16, no. 8, pp. 619–623, 2015.

 [5] D. R. Fonseca, V. C. Dumont, P. C. P. Paiva, P. F. Gonçalves, and M. H. Santos, “Anti-microbial evaluation of peracetic acid as a disinfectant for dental impressions,” Arquivos Em Odontologia, vol. 47, no. 3, pp. 112–118, 2011.

 [6] R. X. Lins, M. F. V. Marceliano-Alves, B. B. Lind, S. S. Pinto, and R. Hirata J´unior, “Efetividade do ´acido perac´etico na desinfecção rapida de cones de guta-percha e de resilon ´ expostos ao Enterococcus faecalis,” Dental Press Endodontics, vol. 7, no. 1, pp. 85–91, 2017.

 [7] R. Ordinola-Zapata, C. M. Bramante, R. Brandão Garcia et al., “/e antimicrobial effect of new and conventional endodontic irrigants on intra-orally infected dentin,” Acta Odontologica Scandinavica, vol. 71, no. 3-4, pp. 424–431, 2013.

 [8] A. Jain, T. Shrivastava, S. Tabassum, and R. Bahuguna, “Comparison of human pulp tissue dissolution capacities of different irrigating solutions: an in vitro study,” European Journal of General Dentistry, vol. 4, no. 2, p. 64, 2015.

 [9] S. Oie, A. Obayashi, H. Yamasaki et al., “Disinfection methods for spores of Bacillus atrophaeus, B. anthracis, Clostridium tetani, C. botulinum and C. difficile,” Biological & Pharmaceutical Bulletin, vol. 34, no. 8, pp. 1325–1329, 2011.

 [10] S. Sella, B. P. Guizelini, and H. Ribeiro, “Validation of peracetic acid as a sporicide for sterilization of working surfaces in biological safety cabinets,” Journal of Microbiology and Infectious Diseases, vol. 2, no. 3, pp. 93–99, 2012.

 [11] M. S. Harakeh, “Inactivation of enteroviruses, rotaviruses and bacteriophages by peracetic acid in a municipal sewage effluent,” FEMS Microbiology Letters, vol. 23, no. 1, pp. 27–30, 1984.

 [12] M. S. Harakeh, Evaluation of the sensitivity of enteric viruses in effluent to chemical disinfection, Ph.D. thesis, University of Surrey, Guildford, UK, 1982.

 [13] S. S. Block, Disinfection, Sterilization, and Preservation, Lippincott Williams & Wilkins, Philadelphia, PA, USA, 2001.   [14] J.-F. Rey, A. Kruse, and C. Neumann, “ESGE/ESGENA technical note on cleaning and disinfection,” Endoscopy, vol. 36, no. 2, p. 185, 2004.

 [15] Y. Ossia-Ongagna and R. Sabatier, “Comparison of in vitro activity of six disinfectants on bacteria from contamination in hemodialysis water,” Journal de Pharmacie de Belgique, vol. 48, no. 5, p. 341, 1993.

 [16] A. L. C. Chassot, M. I. P. Poisl, and S. M. W. Samuel, “In vivo and in vitro evaluation of the efficacy of a peracetic acid-based disinfectant for decontamination of acrylic resins,” Brazilian Dental Journal, vol. 17, no. 2, pp. 117–121, 2006.

 [17] R. Ceretta, M. Paula, E. Angioletto et al., “Evaluation of the effectiveness of peracetic acid in the sterilization of dental equipment,” Indian Journal of Medical Microbiology, vol. 26, no. 2, p. 117, 2008.

 [18] O. L. S. Pereira and J. F. Siqueira, “Contamination of guttapercha and Resilon cones taken directly from the manufacturer,” Clinical Oral Investigations, vol. 14, no. 3, pp. 327–330, 2010.

 [19] P. Linsuwanont, Cleaning of Rotary Nickel-Titamium Endodontic Files, University of Melbourne, School of Dental Science, Melbourne, Australia, 2002.

 [20] E. S. Marsicovetere, D. J. Clement, and C. E. del Rio, “Morphometric video analysis of the engine-driven nickeltitanium lightspeed instrument system,” Journal of Endodontics, vol. 22, no. 5, pp. 231–235, 1996.

 [21] A. Mazzoni, A. Pacifici, A. Zanza et al., “Assessment of realtime operative torque during nickel-titanium instrumentation with different lubricants,” Applied Sciences, vol. 10, no. 18, p. 6201, 2020.

 [22] R. Dornelles-Morgental, J. M. Guerreiro-Tanomaru, N. B. de Faria-J´unior, M. A. Hungaro-Duarte, M. C. Kuga, and M. Tanomaru-Filho, “Antibacterial efficacy of endodontic irrigating solutions and their combinations in root canals contaminated with Enterococcus faecalis,” Oral Surgery, Oral Medicine, Oral Pathology, Oral Radiology, and Endodontology, vol. 112, no. 3, pp. 396–400, 2011.

 [23] K. C. Keine, M. C. Kuga, F. B. C. Tormin et al., “Effect of peracetic acid used as single irrigant on the smear layer, adhesion, and penetrability of AH plus,” Brazilian Oral Research, vol. 33, 2019.

 [24] A. P. M. Gomes, L. dos Santos Lissi, M. B. P. Coelho, E. G. da Silva, F. C. Martinho, and M. F. R. L. Huhtala, “Evaluation of 0.5% peracetic acid and 2.5% sodium hypochlorite on smear layer removal of root canal instrumented by three rotary systems,” Brazilian Dental Science, vol. 17, no. 1, pp. 62–71, 2014.

 [25] M. Dioguardi, D. Sovereto, R. Aiuto et al., “Effects of hot sterilization on torsional properties of endodontic instruments: systematic review with meta-analysis,” Materials, vol. 12, no. 13, p. 2190, 2019.

 [26] J. Lin, S. Han, J. Zhu et al., “Influence of fluoride-containing acidic artificial saliva on the mechanical properties of nickeltitanium orthodontics wires,” Indian Journal of Dental Research, vol. 23, no. 5, pp. 591–595, 2012.

 [27] Y. Shen, J. M. Coil, A. G. R. Mclean, D. L. Hemerling, and M. Haapasalo, “Defects in nickel-titanium instruments after clinical use. Part 5: single use from endodontic specialty practices,” Journal of Endodontics, vol. 35, no. 10, pp. 1363–1367, 2009.

[28] S. Chogle, B. M. Kinaia, and H. E. Goodis, “Scope of nanotechnology in endodontics,” Nanobiomaterials in Clinical Dentistry, Elsevier, Amsterdam, Netherlands, pp. 517–539, 2019.

 [29] G. Gambarini, G. Miccoli, D. D. Nardo et al., “Torsional resistance of two new heat treated nickel titanium rotary instruments: an in vitro evaluation,” Pesquisa Brasileira em Odontopediatria e Cl´ınica Integrada, vol. 20, no. 2, 2020.

 [30] E. Pedulla, F. Lo Savio, G. R. M. La Rosa et al., “Cyclic fatigue ` resistance, torsional resistance, and metallurgical characteristics of M3 Rotary and M3 Pro Gold NiTi files,” Restorative Dentistry & Endodontics, vol. 43, no. 2, 2018.

 [31] G. Gambarini, M. Seracchiani, L. Piasecki et al., “Measurement of torque generated during intracanal instrumentation in vivo,” International Endodontic Journal, vol. 52, no. 5, pp. 737–745, 2019.

 [32] O. Higuera, G. Plotino, L. Tocci, G. Carrillo, G. Gambarini, and D. E. Jaramillo, “Cyclic fatigue resistance of 3 different nickel-titanium reciprocating instruments in artificial canals,” Journal of Endodontics, vol. 41, no. 6, pp. 913–915, 2015.

 [33] H.-C. Kim, Y.-J. Hwang, D.-W. Jung, S.-Y. You, H.-C. Kim, and W. Lee, “Micro-computed tomography and scanning electron microscopy comparisons of two nickel-titanium rotary root canal instruments used with reciprocating motion,” Scanning, vol. 35, no. 2, pp. 112–118, 2013.

 [34] R. C. V. Rodrigues, H. P. Lopes, C. N. Elias, G. Amaral, V. T. L. Vieira, and A. S. De Martin, “Influence of different manufacturing methods on the cyclic fatigue of rotary nickeltitanium endodontic instruments,” Journal of Endodontics, vol. 37, no. 11, pp. 1553–1557, 2011.

 [35] F. de Hemptinne, G. Slaus, M. Vandendael, W. Jacquet, R. J. De Moor, and P. Bottenberg, “In vivo intracanal temperature evolution during endodontic treatment after the injection of room temperature or preheated sodium hypochlorite,” Journal of Endodontics, vol. 41, no. 7, pp. 1112–1115, 2015.

 [36] S. J. Abdul-Zahra Al Hmedat, “Comparison of cyclic fatigue among protapergold, one curve, Wave One® gold and vdw blue files,” Biochemical and Cellular Archives, vol. 19, no. 1, pp. 1309–1312, 2019.

 [37] D. Hull, Fractography: Observing, Measuring and Interpreting Fracture Surface Topography, Cambridge University Press, Cambridge, UK, 1999.

 [38] B. Peng, Y. Shen, G. S. P. Cheung, and T. J. Xia, “Defects in ProTaper S1 instruments after clinical use: longitudinal examination,” International Endodontic Journal, vol. 38, no. 8, pp. 550–557, 2005.

 [39] Y. Ha¨ıkel, R. Serfaty, G. Bateman, B. Senger, and C. Allemann, “Dynamic and cyclic fatigue of engine-driven rotary nickeltitanium endodontic instruments,” Journal of Endodontics, vol. 25, no. 6, pp. 434–440, 1999.

 [40] T. Ozy¨urek, M. G¨undo˘gar, K. Yılmaz, and G. Uslu, “Bending ¨ resistance and cyclic fatigue life of Reciproc Blue, WaveOne Gold, and Genius files in a double (S-shaped) curved canal,” Journal of Dental Research, Dental Clinics, Dental Prospects, vol. 11, no. 4, p. 241, 2017.

 [41] K. Yilmaz, T. Ozy¨urek, and G. Uslu, “Comparision of cyclic ¨ fatigue resistance of one curve, hyflex EDM, WaveOne gold and reciproc blue nickel-titanium rotary files at intra-canal temperature,” Cumhuriyet Dental Journal, vol. 22, no. 1, pp. 42–47, 2019.

 [42] A. Uygun, M. Unal, S. Falakaloglu, and Y. Guven, “Comparison of the cyclic fatigue resistance of hyflex EDM, vortex blue, protaper gold, and onecurve nickel–titanium instruments,” Nigerian Journal of Clinical Practice, vol. 23, no. 1, p. 41, 2020.

 [43] N. Hanbazaza and T. Abuhaimed, “Influence of kinematics on the cyclic fatigue of ProTaper gold and WaveOne gold,” Saudi Endodontic Journal, vol. 10, no. 2, pp. 145–151, 2020.

 [44] M. Tsujimoto, Y. Irifune, Y. Tsujimoto, S. Yamada, I. Watanabe, and Y. Hayashi, “Comparison of conventional and new-generation nickel-titanium files in regard to their physical properties,” Journal of Endodontics, vol. 40, no. 11, pp. 1824–1829, 2014.

 [45] Y. Gao, V. Shotton, K. Wilkinson, G. Phillips, and W. Ben Johnson, “Effects of raw material and rotational speed on the cyclic fatigue of ProFile Vortex rotary instruments,” Journal of Endodontics, vol. 36, no. 7, pp. 1205–1209, 2010.

 [46] N. M. Grande, G. Plotino, R. Pecci, R. Bedini, V. A. Malagnino, and F. Somma, “Cyclic fatigue resistance and three-dimensional analysis of instruments from two nickel-titanium rotary systems,” International Endodontic Journal, vol. 39, no. 10, pp. 755–763, 2006.

 [47] G. S. P. Cheung, E. W. Zhang, and Y. F. Zheng, “A numerical method for predicting the bending fatigue life of NiTi and stainless steel root canal instruments,” International Endodontic Journal, vol. 44, no. 4, pp. 357–361, 2011.

 [48] E.-W. Zhang, G. S. P. Cheung, and Y.-F. Zheng, “Influence of cross-sectional design and dimension on mechanical behavior of nickel-titanium instruments under torsion and bending: a numerical analysis,” Journal of Endodontics, vol. 36, no. 8, pp. 1394–1398, 2010.

 [49] A. D. Uygun, E. Kol, M. K. C. Topcu, F. Seckin, I. Ersoy, and M. Tanriver, “Variations in cyclic fatigue resistance among ProTaper Gold, ProTaper Next and ProTaper Universal instruments at different levels,” International Endodontic Journal, vol. 49, no. 5, pp. 494–499, 2016.

 [50] I. D. Capar, M. E. Kaval, H. Ertas, and B. H. Sen, “Comparison of the cyclic fatigue resistance of 5 different rotary pathfinding instruments made of conventional nickel-titanium wire, M-wire, and controlled memory wire,” Journal of Endodontics, vol. 41, no. 4, pp. 535–538, 2015.

 [51] M. E. Kaval, I. D. Capar, H. Ertas, and B. H. Sen, “Comparative evaluation of cyclic fatigue resistance of four different nickel-titanium rotary files with different cross-sectional designs and alloy properties,” Clinical Oral Investigations, vol. 21, no. 5, pp. 1527–1530, 2017.

 [52] L. C. M. Braga, A. C. Faria Silva, V. T. L. Buono, and M. G. de Azevedo Bahia, “Impact of heat treatments on the fatigue resistance of different rotary nickel-titanium instruments,” Journal of Endodontics, vol. 40, no. 9, pp. 1494–1497, 2014.

 [53] J. H. Ha, G. S. P. Cheung, A. Versluis, C. J. Lee, S. W. Kwak, and H. C. Kim, ““Screw-in” tendency of rotary nickel-titanium files due to design geometry,” International Endodontic Journal, vol. 48, no. 7, pp. 666–672, 2015.

 [54] D. Di Nardo, G. Gambarini, M. Seracchiani et al., “Influence of different cross-section on cyclic fatigue resistance of two nickel–titanium rotary instruments with same heat treatment: an in vitro study,” Saudi Endodontic Journal, vol. 10, no. 3, p. 221, 2020.

 [55] S. Tabassum, K. Zafar, and F. Umer, “Nickel-titanium rotary file systems: What’s new?” European Endodontic Journal, vol. 4, no. 3, p. 111, 2019.

 [56] A. Hieawy, M. Haapasalo, H. Zhou, Z.-j. Wang, and Y. Shen, “Phase transformation behavior and resistance to bending and cyclic fatigue of ProTaper Gold and ProTaper Universalinstruments,” Journal of Endodontics, vol. 41, no. 7, pp. 1134–1138, 2015.

 [57] M. Serafin, M. De Biasi, V. Franco, and D. Angerame, “In vitro comparison of cyclic fatigue resistance of two rotary single-file endodontic systems: OneCurve versus OneShape,” Odontology, vol. 107, no. 2, pp. 196–201, 2019.

 [58] B. /ierry, M. Tabrizian, C. Trepanier, O. Savadogo, and L. H. Yahia, “Effect of surface treatment and sterilization processes on the corrosion behavior of NiTi shape memory alloy,” Journal of Biomedical Materials Research, vol. 51, no. 4, pp. 685–693, 2000.

 [59] V. J. Pulikkottil, S. Chidambaram, P. Bejoy, P. Femin, P. Paul, and M. Rishad, “Corrosion resistance of stainless steel, nickeltitanium, titanium molybdenum alloy, and ion-implanted titanium molybdenum alloy archwires in acidic fluoridecontaining artificial saliva: an in vitro study,” Journal of Pharmacy & Bioallied Sciences, vol. 8, no. Suppl 1, p. S96, 2016.

 [60] R. D. Desiati, E. Sugiarti, and K. Z. /osin, Eds., AIP Conference Proceedings, vol. 1964, no. 1, p. 020018, 2018.

 [61] M.-H. Lee, A. Versluis, B.-M. Kim, C.-J. Lee, B. Hur, and H.-C. Kim, “Correlation between experimental cyclic fatigue resistance and numerical stress analysis for nickel-titanium rotary files,” Journal of Endodontics, vol. 37, no. 8, pp. 1152–1157, 2011.

 [62] H.-C. Kim, J. Yum, B. Hur, and G. S.-P. Cheung, “Cyclic fatigue and fracture characteristics of ground and twisted nickel-titanium rotary files,” Journal of Endodontics, vol. 36, no. 1, pp. 147–152, 2010.

 [63] M. Mega, “Micro mega (2020). One curve brochure,” 2020,https://micro-mega.com/wp-content/uploads/2020/08/ Brochure-One-Curve-EN-1.pdf.

 [64] D. Zhao, Y. Shen, B. Peng, and M. Haapasalo, “Effect of autoclave sterilization on the cyclic fatigue resistance of thermally treated nickel-titanium instruments,” International Endodontic Journal, vol. 49, no. 10, pp. 990–995, 2016.

 [65] G. Plotino, N. M. Grande, M. Cordaro, L. Testarelli, and G. Gambarini, “A review of cyclic fatigue testing of nickeltitanium rotary instruments,” Journal of Endodontics, vol. 35, no. 11, pp. 1469–1476, 2009. 

 [66] J. H. Yao, S. A. Schwartz, and T. J. Beeson, “Cyclic fatigue of three types of rotary nickel-titanium files in a dynamic model,” Journal of Endodontics, vol. 32, no. 1, pp. 55–57, 2006.

 [67] T. Abuhaimed, “Effect of environment on cyclic fatigue of ProTaper Next rotary files,” Saudi Endodontic Journal, vol. 8, no. 2, p. 117, 2018.

 [68] G. S. P. Cheung and B. W. Darvell, “Low-cycle fatigue of NiTi rotary instruments of various cross-sectional shapes,” International Endodontic Journal, vol. 40, no. 8, pp. 626–632, 2007.

 [69] H. P. Lopes, C. N. Elias, M. V. B. Vieira et al., “Fatigue life of Reciproc and Mtwo instruments subjected to static and dynamic tests,” Journal of Endodontics, vol. 39, no. 5, pp. 693–696, 2013. 

 [70] H. S. Topçuoglu, S. D¨uzg¨un, A. Aktı, and G. Topçuo ˘ glu, ˘ “Laboratory comparison of cyclic fatigue resistance of WaveOne Gold, Reciproc and WaveOne files in canals with a double curvature,” International Endodontic Journal, vol. 50, no. 7, pp. 713–717, 2017. 

 [71] H. S. Topçuo˘glu, G. Topçuo˘glu, O Kafda˘g, and H. Balkaya, ¨ “Effect of two different temperatures on resistance to cyclic fatigue of one Curve, EdgeFile, HyFlex CM and ProTaper next files,” Australian Endodontic Journal: 5e Journal of the Australian Society of Endodontology Inc, vol. 46, no. 1, pp. 68–72, 2020


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