Effectiveness of Vapor Lock Effect Removal in Endo Training Blocks: Manual Dynamic Agitation versus Passive Ultrasonic Irrigation
Abstract
:1. Introduction
1.1. Vapor Lock
1.2. Manual Dynamic Agitation (MDA) and Passive Ultrasonic Iirrigation (PUI)
2. Materials and Methods
Statistical Analysis
3. Results
4. Discussion
5. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Test Number | Manual Dynamic Agitation (MDA) Vapor Lock | Test Number | Passive Ultrasonic Agitation (PUI) Vapor Lock | ||||
---|---|---|---|---|---|---|---|
Un Removed | Reduction (%) | Removal | Un Removed | Reduction (%) | Removal | ||
1 | ++ 1 | 26 | − 2 | ||||
2 | ++ | 27 | 41.253 | ||||
3 | ++ | 28 | − | ||||
4 | 22.23 | 29 | − | ||||
5 | 27.67 | 30 | 79.89 | ||||
6 | 88.23 | 31 | − | ||||
7 | ++ | 32 | − | ||||
8 | ++ | 33 | − | ||||
9 | ++ | 34 | − | ||||
10 | ++ | 35 | 75.994 | ||||
11 | 44.155 | 36 | 77.1564 | ||||
12 | 40.64 | 37 | 74.884 | ||||
13 | ++ | 38 | 80 | ||||
14 | ++ | 39 | 67.645 | ||||
15 | ++ | 40 | 78.165 | ||||
16 | − | 41 | 72.854 | ||||
17 | ++ | 42 | 72.65 | ||||
18 | ++ | 43 | 80.175 | ||||
19 | ++ | 44 | 69.536 | ||||
20 | 70.14 | 45 | 77.7 | ||||
21 | 66.783 | 46 | 77.854 | ||||
22 | 49.693 | 47 | 74.34 | ||||
23 | − | 48 | ++ | ||||
24 | 92.073 | 49 | 70.92 | ||||
25 | ++ | 50 | 93.92 | ||||
Total | 1 | 9 | 15 | 7 | 17 | 1 |
Author, Data, Journal | Characteristics of the Samples | Investigation Method | Endodontic Instruments Used for Shaping | Irrigation Activation Method | Type of Data Recorded | Results |
---|---|---|---|---|---|---|
Agarwal et al. 2017, Contemp Dent Pract [36] | 60 extracted teeth decoronated | CBCT (cone beam computed tomography) | Protaper universal f4 (Maillefer) of up to 40 size 0.06 taper in tips | PUI.20 Sonic Endoactivator, 20 MDA (k file) 0.20 | Absence of vapor lock | PUI 18/20 Sonic 16/20 MDA 10/20 |
Su et al. 2017, Beijing Da Xue Xue Bao Yi Xue Ban [11] | 40 canal simulations | CBCT | Wave one primary (Maillefer) of up to 25 size 0.07 taper in tips | PUI, 10 PIPS, 10 Sonic Endoactivator, 10 MDA (cone gutta-percha) 0.10 | Volume reduction as a percentage of vapor lock) | PUI 70.37% PIPS. 100% Sonic 63.54% MDA 100% |
Castelo-Baz et al. 2016 J Clin Exp Dent. [22] | 60 diaphanized and decoronated teeth | Direct observation of the sample | GTX (Dentsply Tulsa Dental) 20, 0.04; 20, 0.06; 30, 0.06 | PPI (needle) 20 PUI 20 CUI 20 | Removal of the vapor lock | PPI 0/20 PUI. 8/20 CUI 18/20 |
Castelo-Baz et al. 2012 J Endod. [16] | 30 open system, 30 closed system | Direct observation of the sample | Protaper universal f3 (Maillefer) of up to 30 size 0.09 taper in tips | PPI (needle) 20 PUI 20 CUI 20 | Removal of the vapor lock | PPI 0/20 PUI 14/20 CUI 16/20 |
Sáinz-Pardo et al. 2014 Braz Dent J [17] | 60 extracted teeth (30 closed system 30 open system) | RX (periapical radiography) | Profile rotary files (Maillefer) of up to 30 size 0.06 taper | PUI 20 PPI (needle) 20 Sonic 20 | Removal of the vapor lock | PUI 7/10 (closed system) 10/10 (open system) PPI 3/10 (closed system) 10/10 (open system) |
Vera et al. 2012 J Endod. [15] | In vivo 43 teeth 22 patency 21 no patency | RX periapical | K 3 System (Sybron Dental Specialties) 40/06 | PPI (needle) 43 | Absence of vapor lock | 11/22 vapor lock absent group patency 18/21 vapor lock absent group no patency |
Vera et al. 2012 J Endod. [10] | In vivo 71 teeth 36 patencyweiqi35 no patency | RX periapical | Protaper universal f3 (Maillefer) of up to 30 size 0.08 taper in tips | PPI 71 | Absence of vapor lock | 25/36 vapor lock absent group patency 21/35 vapor lock absent group no patency |
Boutsioukis et al. 2014 Int Endod J [14] | 20 canal simulations (×16 = 320 combinations) | Stereoscopic microscope | Race (FKG Dentaire, La Chaux-de-Fonds, Switzerland) to either size 35, 0.04 taper (group A) or size 50, 0.04 taper | PPI (needle) open ended and closed ended needle | Absence of vapor lock | 160 needle close-ended open 60 absent vapor lock 160 needle open-ended 106 absent vapor lock |
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Dioguardi, M.; Crincoli, V.; Sovereto, D.; Caloro, G.A.; Aiuto, R.; Illuzzi, G.; Caponio, V.C.A.; Troiano, G.; De Lillo, A.; Ciavarella, D.; et al. Effectiveness of Vapor Lock Effect Removal in Endo Training Blocks: Manual Dynamic Agitation versus Passive Ultrasonic Irrigation. Appl. Sci. 2019, 9, 5411. https://doi.org/10.3390/app9245411
Dioguardi M, Crincoli V, Sovereto D, Caloro GA, Aiuto R, Illuzzi G, Caponio VCA, Troiano G, De Lillo A, Ciavarella D, et al. Effectiveness of Vapor Lock Effect Removal in Endo Training Blocks: Manual Dynamic Agitation versus Passive Ultrasonic Irrigation. Applied Sciences. 2019; 9(24):5411. https://doi.org/10.3390/app9245411
Chicago/Turabian StyleDioguardi, Mario, Vito Crincoli, Diego Sovereto, Giorgia Apollonia Caloro, Riccardo Aiuto, Gaetano Illuzzi, Vito Carlo Alberto Caponio, Giuseppe Troiano, Alfredo De Lillo, Domenico Ciavarella, and et al. 2019. "Effectiveness of Vapor Lock Effect Removal in Endo Training Blocks: Manual Dynamic Agitation versus Passive Ultrasonic Irrigation" Applied Sciences 9, no. 24: 5411. https://doi.org/10.3390/app9245411
APA StyleDioguardi, M., Crincoli, V., Sovereto, D., Caloro, G. A., Aiuto, R., Illuzzi, G., Caponio, V. C. A., Troiano, G., De Lillo, A., Ciavarella, D., & Lo Muzio, L. (2019). Effectiveness of Vapor Lock Effect Removal in Endo Training Blocks: Manual Dynamic Agitation versus Passive Ultrasonic Irrigation. Applied Sciences, 9(24), 5411. https://doi.org/10.3390/app9245411