Page 21 - SPEMD_59-2
P. 21
rev port estomatol med dent cir maxilofac . 2018;59(2):75-79 79
20. Capar ID, Kaval ME, Ertas H, Sen BH. Comparison of the cyclic titanium coronal flaring instruments used in lateral action.
fatigue resistance of 5 different rotary pathfinding Int Endod J. 2014;47:505-13.
instruments made of conventional nickel-titanium wire, 24. Hayashi Y, Yoneyama T, Yahata Y, Miyai K, Doi H, Hanawa T,
M-wire, and controlled memory wire. J Endod. 2015;41:535-8. Ebihara A, Suda H. Phase transformation behaviour and
21. Grande NM, Plotino G, Pecci R, Bedini R, Malagnino VA, bending properties of hybrid nickel-titanium rotary
Somma F. Cyclic fatigue resistance and three-dimensional endodontic instruments. Int Endod J. 2007;40:247-53.
analysis of instruments from two nickel-titanium rotary 25. Pereira ES, Peixoto IF, Viana AC, Oliveira II, Gonzalez BM,
systems. Int Endod J. 2006;39:755-63. Buono VT, Bahia MG. Physical and mechanical properties of a
22. Plotino G, Testarelli L, Al-Sudani D, Pongione G, Grande NM, thermomechanically treated NiTi wire used in the
Gambarini G. Fatigue resistance of rotary instruments manufacture of rotary endodontic instruments. Int Endod J.
manufactured using different nickel– titanium alloys: a 2012;45:469-74.
comparative study. Odontology. 2014;102:31-5. 26. Shen Y, Qian W, Abtin H, Gao Y, Haapasalo M. Effect of
23. Peters OA, Morgental RD, Schulze KA, Paqué F, Kopper PM, environment on fatigue failure of controlled memory wire
Vier-Pelisser FV. Determining cutting efficiency of nickel- nickel-titanium rotary instruments. J Endod. 2012;38:376-80.

