›› 2020, Vol. 40 ›› Issue (10): 940-946.
• Summary • Previous Articles Next Articles
Fei FENG1,
Received:
2020-02-16
Revised:
2020-04-20
Online:
2020-10-28
Published:
2020-10-28
Supported by:
Fei FENG. Advancement in shaping ability of new thermomechanical-treated nickel-titanium instrument in curved canals[J]. , 2020, 40(10): 940-946.
Add to citation manager EndNote|Reference Manager|ProCite|BibTeX|RefWorks
[1] | Sch?fer E, Diez C, Hoppe W, et al. Roentgenographic Investigation of Frequency and Degree of Canal Curvatures in Human Permanent Teeth [J]. J Endod, 2002, 28(3): 211-216. |
[2] | Shen Y, Zhou H M, Zheng Y F, et al. Current Challenges and Concepts of the Thermomechanical Treatment of Nickel-Titanium Instruments [J]. J Endod, 2013, 39(2): 163-172. |
[3] | Ruddle C, Machtou P, West J. The Shaping Movement: Fifth-Generation Technology [J]. Dent Today, 2013, 32(94): 96-99. |
[4] | Yared G. Canal Preparation Using Only One Ni-Ti Rotary Instrument: Preliminary Observations [J]. Int Endod J, 2008, 41(4): 339-344. |
[5] | 赵亚楠, 薛明. 机用镍钛器械切削及成形能力的影响因素 [J]. 中国实用口腔科杂志, 2019, 12(04): 197-200. |
[6] | Zupanc J, Vahdat-Pajouh N, Schaefer E. New Thermomechanically Treated Niti Alloys - a Review [J]. Int Endod J, 2018, 51(10): 1088-1103. |
[7] | Shen Y, Zhou H-M, Zheng Y-F, et al. Current Challenges and Concepts of the Thermomechanical Treatment of Nickel-Titanium Instruments [J]. J Endod, 2013, 39(2): 163-172. |
[8] | Theisen W, Schuermann A. Electro Discharge Machining of Nickel–Titanium Shape Memory Alloys [J]. Materials Science and Engineering: A, 2004, 378(1): 200-204. |
[9] | Arbab-Chirani R, Chevalier V, Arbab-Chirani S, et al. Comparative Analysis of Torsional and Bending Behavior through Finite-Element Models of 5 Ni–Ti Endodontic Instruments [J]. Oral Surgery, Oral Medicine, Oral Pathology, Oral Radiology, and Endodontology, 2011, 111(1): 115-121. |
[10] | Yum J, Cheung G S-P, Park J-K, et al. Torsional Strength and Toughness of Nickel-Titanium Rotary Files [J]. J Endod, 2011, 37(3): 382-386. |
[11] | Versluis A, Kim H-C, Lee W, et al. Flexural Stiffness and Stresses in Nickel-Titanium Rotary Files for Various Pitch and Cross-Sectional Geometries [J]. J Endod, 2012, 38(10): 1399-1403. |
[12] | Ha J-H, Kwak S W, Versluis A, et al. The Geometric Effect of an Off-Centered Cross-Section on Nickel–Titanium Rotary Instruments: A Finite Element Analysis Study [J]. Journal of Dental Sciences, 2017, 12(2): 173-178. |
[13] | Berutti E, Chiandussi G, Gaviglio I, et al. Comparative Analysis of Torsional and Bending Stresses in Two Mathematical Models of Nickel-Titanium Rotary Instruments: Protaper Versus Profile [J]. J Endod, 2003, 29(1): 15-19. |
[14] | Capar I D, Ertas H, Ok E, et al. Comparison of Single Cone Obturation Performance of Different Novel Nickel-Titanium Rotary Systems [J]. Acta Odontol Scand, 2014, 72(7): 537-542. |
[15] | Azim A A, Piasecki L, Da Silva Neto U X, et al. Xp Shaper, a Novel Adaptive Core Rotary Instrument: Micro–Computed Tomographic Analysis of Its Shaping Abilities [J]. J Endod, 2017, 43(9): 1532-1538. |
[16] | Gundappa M, Bansal R, Khoriya S, et al. Root Canal Centering Ability of Rotary Cutting Nickel Titanium Instruments: A Meta-Analysis [J]. J Conserv Dent, 2014, 17(6): 504-509. |
[17] | Ahn S Y, Kim H C, Kim E. Kinematic Effects of Nickel-Titanium Instruments with Reciprocating or Continuous Rotation Motion: A Systematic Review of in Vitro Studies [J]. J Endod, 2016, 42(7): 1009-1017. |
[18] | Pedulla E, Plotino G, Grande N M, et al. Shaping Ability of Two Nickel-Titanium Instruments Activated by Continuous Rotation or Adaptive Motion: A Micro-Computed Tomography Study [J]. Clin Oral Investig, 2016, 20(8): 2227-2233. |
[19] | Capar I D, Ertas H, Ok E, et al. Comparative Study of Different Novel Nickel-Titanium Rotary Systems for Root Canal Preparation in Severely Curved Root Canals [J]. J Endod, 2014, 40(6): 852-856. |
[20] | Silva E J N L, Pacheco P T, Pires F, et al. Microcomputed Tomographic Evaluation of Canal Transportation and Centring Ability of Protaper Next and Twisted File Adaptive Systems [J]. Int Endod J, 2017, 50(7): 694-699. |
[21] | Silva E J N L, Tameir?o M D N, Belladonna F G, et al. Quantitative Transportation Assessment in Simulated Curved Canals Prepared with an Adaptive Movement System [J]. J Endod, 2015, 41(7): 1125-1129. |
[22] | Pedrinha V F, Brandao J, Pessoa O F, et al. Influence of File Motion on Shaping, Apical Debris Extrusion and Dentinal Defects: A Critical Review [J]. Open Dent J, 2018, 12(1):189-201. |
[23] | Gavini G, Santos M D, Caldeira C L, et al. Nickel-Titanium Instruments in Endodontics: A Concise Review of the State of the Art [J]. Braz Oral Res, 2018, 32(1): 44-65. |
[24] | Capar I D, Arslan H. A Review of Instrumentation Kinematics of Engine-Driven Nickel-Titanium Instruments [J]. Int Endod J, 2016, 49(2): 119-135. |
[25] | Kuzekanani M. Nickel-Titanium Rotary Instruments: Development of the Single-File Systems [J]. J Int Soc Prev Community Dent, 2018, 8(5): 386-390. |
[26] | D'amario M, De Angelis F, Mancino M, et al. Canal Shaping of Different Single-File Systems in Curved Root Canals [J]. Journal of Dental Sciences, 2017, 12(4): 328-332. |
[27] | Gambill J M, Alder M, Del Rio C E. Comparison of Nickel-Titanium and Stainless Steel Hand-File Instrumentation Using Computed Tomography [J]. J Endod, 1996, 22(7): 369-375. |
[28] | Habib A A, Taha M I, Farah E M. Methodologies Used in Quality Assessment of Root Canal Preparation Techniques: Review of the Literature [J]. Journal of Taibah University Medical Sciences, 2015, 10(2): 123-131. |
[29] | Cui Z, Wei Z, Du M, et al. Shaping Ability of Protaper Next Compared with Waveone in Late-Model Three-Dimensional Printed Teeth [J]. BMC Oral Health, 2018, 18(1): 115. |
[30] | Wu H, Peng C, Bai Y, et al. Shaping Ability of Protaper Universal, Waveone and Protaper Next in Simulated L-Shaped and S-Shaped Root Canals [J]. BMC Oral Health, 2015, 15(27. |
[31] | Yuan G, Yang G. Comparative Evaluation of the Shaping Ability of Single-File System Versus Multi-File System in Severely Curved Root Canals [J]. Journal of Dental Sciences, 2018, 13(1): 37-42. |
[32] | 江波, 黄静. 不同镍钛器械在弯曲根管预备中的比较 [J]. 口腔医学研究, 2019, 35(04): 331-334. |
[33] | Huang Z, Quan J, Liu J, et al. A Microcomputed Tomography Evaluation of the Shaping Ability of Three Thermally-Treated Nickel-Titanium Rotary File Systems in Curved Canals [J]. J Int Med Res, 2019, 47(1): 325-334. |
[34] | Kishore A, Gurtu A, Bansal R, et al. Comparison of Canal Transportation and Centering Ability of Twisted Files, Hyflex Controlled Memory, and Wave One Using Computed Tomography Scan: An in Vitro Study [J]. J Conserv Dent, 2017, 20(3): 161-165. |
[35] | Marceliano-Alves M F, Sousa-Neto M D, Fidel S R, et al. Shaping Ability of Single-File Reciprocating and Heat-Treated Multifile Rotary Systems: A Micro-Ct Study [J]. Int Endod J, 2015, 48(12): 1129-1136. |
[36] | Van Der Vyver P J, Paleker F, Vorster M, et al. Root Canal Shaping Using Nickel Titanium, M-Wire, and Gold Wire: A Micro-Computed Tomographic Comparative Study of One Shape, Protaper Next, and Waveone Gold Instruments in Maxillary First Molars [J]. J Endod, 2019, 45(1): 62-67. |
[37] | Gagliardi J, Versiani M A, De Sousa-Neto M D, et al. Evaluation of the Shaping Characteristics of Protaper Gold, Protaper Next, and Protaper Universal in Curved Canals [J]. J Endod, 2015, 41(10): 1718-1724. |
[38] | Pacheco-Yanes J, Gazzaneo I, Perez A R, et al. Transportation Assessment in Artificial Curved Canals after Instrumentation with Reciproc, Reciproc Blue, and XP-Endo Shaper Systems [J]. J Investig Clin Dent, 2019, e12417. |
[39] | Peters O A, Boessler C, Paqué F. Root Canal Preparation with a Novel Nickel-Titanium Instrument Evaluated with Micro-Computed Tomography: Canal Surface Preparation over Time [J]. J Endod, 2010, 36(6): 1068-1072. |
[40] | Love R M, Jenkinson H F. Invasion of Dentinal Tubules by Oral Bacteria [J]. Crit Rev Oral Biol Med, 2002, 13(2): 171-183. |
[41] | Wilcox L R, Roskelley C, Sutton T. The Relationship of Root Canal Enlargement to Finger-Spreader Induced Vertical Root Fracture [J]. J Endod, 1997, 23(8): 533-534. |
[42] | Lim S S, Stock C J R. The Risk of Perforation in the Curved Canal - Anticurvature Filing Compared with the Stepback Technique [J]. Int Endod J, 1987, 20(1): 33-39. |
[43] | Venino P M, Citterio C L, Pellegatta A, et al. A Micro–Computed Tomography Evaluation of the Shaping Ability of Two Nickel-Titanium Instruments, Hyflex Edm and Protaper Next [J]. J Endod, 2017, 43(4): 628-632. |
[44] | Sousa-Neto M D, Silva-Sousa Y C, Mazzi-Chaves J F, et al. Root Canal Preparation Using Micro-Computed Tomography Analysis: A Literature Review [J]. Braz Oral Res, 2018, 32(1): 20-43. |
[45] | De-Deus G, Rodrigues E A, Belladonna F G, et al. Anatomical Danger Zone Reconsidered: A Micro-Ct Study on Dentine Thickness in Mandibular Molars [J]. Int Endod J, 2019, 52(10): 1501-1507. |
[46] | Ceyhanli K T, Kamaci A, Taner M, et al. Shaping Ability of Two M-Wire and Two Traditional Nickel-Titanium Instrumentation Systems in S-Shaped Resin Canals [J]. Niger J Clin Pract, 2015, 18(6): 713-717. |
[47] | Burklein S, Poschmann T, Schafer E. Shaping Ability of Different Nickel-Titanium Systems in Simulated S-Shaped Canals with and without Glide Path [J]. J Endod, 2014, 40(8): 1231-1234. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||