Rodríguez-Delgado
I, Bladé-Diaz AD, Reyes-Osorio LA, Flores-Treviño JJ, Madla-Cruz E, De La
Garza-Ramos MA. A comparative study of glide path instruments assessing
flexibility and torsion by finite element method. J Clin Exp Dent. 2025;17(12):e1524-34.
doi:10.4317/jced.62820
https://doi.org/10.4317/jced.62820
___
References
|
1.
Özyürek T, Uslu G, İnan U. A Comparison of the Cyclic Fatigue Resistance of Used
and New Glide Path Files. J Endod. 2017;43:477-80. |
|
|
|
|
|
2.
Keskin C, İnan U, Demiral M, Keleş A. Cyclic fatigue resistance of R-Pilot,
WaveOne Gold Glider, and ProGlider glide path instruments. Clin Oral
Investig. 2018;22:3007-12. |
|
|
|
|
|
3.
Dioguardi M, Gioia GD, Illuzzi G, Laneve E, Cocco A, Troiano G. Endodontic
irrigants: Different methods to improve efficacy and related problems. Eur J
Dent. 2018;12:459-66. |
|
|
|
|
|
4.
Zupanc J, Vahdat-Pajouh N, Schäfer E. New thermomechanically treated NiTi
alloys - a review. Int Endod J. 2018;51:1088-103. |
|
|
|
|
|
5.
Auricchio, F.; Petrini, L. A three-dimensional model describing
stress-temperature induced solid phase transformations: Solution algorithm
and boundary value problems. Int. J. Numer. Methods Eng. 2004;61:807-836. |
|
|
|
|
|
6.
Bergmans L, Van Cleynenbreugel J, Wevers M, Lambrechts P. Mechanical root
canal preparation with NiTi rotary instruments: rationale, performance and
safety. Status report for the American Journal of Dentistry. Am J Dent.
2001;14:324-33. |
|
|
|
|
|
7.
Gutmann JL, Gao Y. Alteration in the inherent metallic and surface properties
of nickel-titanium root canal instruments to enhance performance, durability
and safety: a focused review. Int Endod J. 2012;45:113-28. |
|
|
|
|
|
8.
Sattapan B, Nervo G, Palamara J, Messer H. Defects in rotary nickel-titanium
files after clinical use. J Endod. 2000;26:161-5. |
|
|
|
|
|
9.
Bahia MG, Melo MC, Buono VT. Influence of simulated clinical use on the
torsional behavior of nickel-titanium rotary endodontic instruments. Oral
Surg Oral Med Oral Pathol Oral Radiol Endod. 2006;101:675-80. |
|
|
|
|
|
10.
Melo MC, Pereira ES, Viana AC, Fonseca AM, Buono VT, Bahia MG. Dimensional
characterization and mechanical behaviour of K3 rotary instruments. Int Endod
J. 2008;41:329-38. |
|
|
|
|
|
11.
Ninan E, Berzins DW. Torsion and bending properties of shape memory and
superelastic nickel-titanium rotary instruments. J Endod. 2013;39:101-4. |
|
|
|
|
|
12.
Roda-Casanova V, Pérez-González A, Zubizarreta-Macho A, Faus-Matoses V.
Influence of Cross-Section and Pitch on the Mechanical Response of NiTi
Endodontic Files under Bending and Torsional Conditions-A Finite Element
Analysis. J. Clin. Med. 2022;11:2642. |
|
|
|
|
|
13.
Noguiera Silva EJ, Hecksher F, Antunes HDS, De-Deus G, Elias CN, Leal Vieira
VT. Torsional Fatigue Resistance of Blue-treated Reciprocating Instruments. J
Endod. 2018;44:1038-41. |
|
|
|
|
|
14.
Chien PY, Walsh LJ, Peters OA. Finite element analysis of rotary
nickel-titanium endodontic instruments: A critical review of the methodology.
Eur. J. Oral Sci. 2021;129:e12802. |
|
|
|
|
|
15.
Ismail AG, Zaazou MHA, Galal M. et al. Finite element analysis comparing
WaveOne Gold and ProTaper Next endodontic file segments subjected to bending
and torsional load. Bull Natl Res Cent. 2019;43:194. |
|
|
|
|
|
16.
Leandro de Arruda Santos, Mechanical behavior of three nickel-titanium rotary
files: A comparison of numerical simulation with bending and torsion tests
Materials Science and Engineering C. 2014;37:258-263 |
|
|
|
|
|
17.
Vorster M, van der Vyver PJ, Paleker F. Canal transportation and centering
ability of WaveOne Gold in combination with and without different glide path
techniques. Journal of endodontics. 2018;44:1430-1435. |
|
|
|
|
|
18.
Elnaghy AM, Elsaka SE. Evaluation of root canal transportation, centering
ratio, and remaining dentinthickness associated with ProTaper Next
instruments with and without glide path. Journal of endodontics. 2014;40:2053-2056. |
|
|
|
|
|
19.
Vivan RR, Alcalde MP, Candeiro G, Gavini G, Caldeira CL, Duarte MAH.
Torsional fatigue strength of reciprocating and rotary pathfinding
instruments manufactured from different NiTi alloys. Brazilian Oral Research.
2019;33:e097. |
|
|
|
|
|
20.
Chang SW, Shim KS, Kim YC, Jee KK, Zhu Q, Perinpanayagam H, et al. Cyclic
fatigue resistance, torsional resistance, and metallurgical characteristics
of V taper 2 and V taper 2H rotary NiTi files. Scanning. 2016;38:564-570. |
|
|
|
|
|
21.
International Organization for Standardization. ISO 3630-1, Dental Root Canal
Instruments-Part 1: Files, Reamers, Barbed Broaches, Rasps, Paste Carriers,
Explorers and Cotton Broaches. Switzerland: ISO; 1992. |
|
|
|
|
|
22.
Alovisi M, Cemenasco A, Mancini L, Paolino D, Scotti N, Bianchi CC,
Pasqualini D. Micro-CT evaluation of several glide path techniques and
ProTaper Next shaping outcomes in maxillary first molar curved canals. Int
Endod J. 2017;50:387-97. |
|
|
|
|
|
23.
Topçuoğlu HS, Topçuoğlu G, Düzgün S. Resistance to cyclic fatigue of
PathFile, ScoutRaCe and ProGlider glide path files in an S-shaped canal. Int
Endod J. 2018;51:509-514. |
|
|
|
|
|
24.
Chang SW, Shim KS, Kim YC, Jee KK, Zhu Q, Perinpanayagam H, Kum KY. Cyclic
fatigue resistance, torsional resistance, and metallurgical characteristics
of V taper 2 and V taper 2H rotary NiTi files. Scanning. 2016;38:564-70. |
|
|
|
|
|
25.
Keskin C, İnan U, Demiral M, Keleş A. Cyclic fatigue resistance of R-Pilot,
WaveOne Gold Glider, and ProGlider glide path instruments. Clin Oral
Investig. 2018;22:3007-12. |
|
|
|
|
|
26.
Serefoglu B, Kaval M, Micoogullari Kurt S, Çalişkan M. Cyclic Fatigue
Resistance of Novel Glide Path Instruments with Different Alloy Properties
and Kinematics. J Endod. 2018;44:1422-4. |
|
|
|
|
|
27.
Vorster M, van der Vyver PJ, Paleker F. Canal Transportation and Centering
Ability of WaveOne Gold in Combination with and without Different Glide Path
Techniques. J Endod. 2018;44:1430-1435. |
|
|
|
|
|
28.
Santos CB, Simões-Carvalho M, Perez R, Vieira VTL, Antunes HS, Cavalcante DF,
et al. Torsional fatigue resistance of R-Pilot and WaveOne Gold Glider NiTi
glide path reciprocating systems. Int Endod J. 2019;52:874-79. |
|
|
|
|
|
29.
Vivan RR, Alcalde MP, Candeiro G, Gavini G, Caldeira CL, Duarte MAH.
Torsional fatigue strength of reciprocating and rotary pathfinding
instruments manufactured from different NiTi alloys. Braz Oral Res.
2019;33:e097. |
|
|
|
|
|
30.
Özyürek T, Uslu G, Gündoğar M, Yılmaz K, Grande NM, Plotino G. Comparison of
cyclic fatigue resistance and bending properties of two reciprocating
nickel-titanium glide path files. Int Endod J. 2018;51:1047-52. |
|
|
|
|
|
31.
Scherer, André Schroder et al. "Effect of glide path instruments in
cyclic fatigue resistance of reciprocating instruments after three
uses." Brazilian dental journal vol. 2023;34:27-34. |
|
|
|
|
|
32.
Oh, Soram et al. "Evaluation of design, mechanical properties, and
torque/force generation of heat-treated NiTi glide path instruments."
BMC oral health vol. 2022;22:528 https://doi.org/10.1186/s12903-022-02575-7 |
|
|
|
|
|
33.
Lopes WSP, Vieira VTL, Silva EJNL, Silva MCD, Alves FRF, Lopes HP, Pires FR.
Bending, buckling and torsional resistance of rotary and reciprocating glide
path instruments. Int Endod J. 2020;53:1689-1695. |
|
|
|
|
|
34.
Thu, Myint et al. "Dynamic torque and screw-in force of four different
glide path instruments assessed in simulated single- and double-curved
canals: An in vitro study." Journal of dental sciences vol. 2023;18:1598-1603.
doi:10.1016/j.jds.2023.02.015]. |
|
|
|
|
|
35.
Zupanc J, Vahdat-Pajouh N, Schäfer E. New thermomechanically treated NiTi
alloys-a review. International endodontic journal. 2018;51:1088-1103. |
|