SciELO - Scientific Electronic Library Online

 
vol.9 número3 índice de autoresíndice de assuntospesquisa de artigos
Home Pagelista alfabética de periódicos  

Brazilian Journal of Oral Sciences

versão On-line ISSN 1677-3225

Braz. J. Oral Sci. vol.9 no.3 Piracicaba Jul./Set. 2010

 

ORIGINAL ARTICLE

 

Dimensional stability of distances between teeth in complete dentures comparing microwave polymerization and conventional cycles

 

 

Wagner Araújo de NegreirosI; Rafael Leonardo Xediek ConsaniII; Marcelo Ferraz MesquitaII

IPhD, Professor, Department of Prosthodontics, School of Dentistry, University of Fortaleza, Brazil
IIPhD, Professor, Department of Prosthodontics, Piracicaba Dental School, University of Campinas, Brazil

Correspondence to

 

 


ABSTRACT

AIM: This study investigated the tooth movement of complete dentures processed by microwave activation and conventional processing method in water bath.
METHODS:
Twenty maxillary complete dentures were fabricated and randomly assigned to 4 groups (n=5): Group I: Classico conventional heat-curing acrylic resin processed by microwave polymerization; Group II: Classico resin processed in water bath at 74°C for 9 h (control-group); Group III: QC-20 fast heat-curing acrylic resin processed in boiling water for 20 min; Group IV: Onda-Cryl microwave acrylic resin processed at the same conditions of Group 1. Metallic referential pins were placed on the incisal border of the central incisors, buccal cusp of the first premolars, and the mesiobuccal cusp of the second molars. Transversal and anteroposterior distances were measured before and after the complete dentures processing with a linear optical microscope (Olympus Optical Co., Tokyo, Japan) accurate to 0.0005 mm. Data were subjected to ANOVA and Tukey's test at 5% significance levels.
RESULTS:
Inside each group, dentures showed some tooth movement but without statistical difference before and after the polymerization.
CONCLUSIONS:
Dentures processed by microwave energy presented similar performance to those subjected to conventional cycles in water bath for most of distances evaluated.

Keywords: complete denture, tooth movement, artificial tooth.


 

 

Full text available only in PDF format.

 

 

References

1. McCartney JW. Flange adaptation discrepancy, palatal base distortion, and induced malocclusion caused by processing acrylic resin maxillary complete dentures. J Prosthet Dent. 1984; 52: 545-53.         [ Links ]

2. Peyton FA. Packing and pressing denture base resins. J Am Dent Assoc. 1950; 40: 520-8.         [ Links ]

3. Firtell DN, Green AJ, Elahi JM. Posterior peripheral seal distortion related to processing temperature. J Prosthet Dent. 1981; 45: 598-601.         [ Links ]

4. Mowery WE, Burns CL, Dickson G, Sweeney WT. Dimensional stability of denture base resins. J Am Dent Assoc. 1958; 57: 345-52.         [ Links ]

5. Blagojevic V, Murphy VM. Microwave polymerization of denture base materials. A comparative study. J Oral Rehabil. 1999; 26: 804-8.         [ Links ]

6. Keenan PJL, Radford DR, Clark RKF. Dimensional change in complete dentures fabricated by injection molding and microwave processing. J Prosthet Dent. 2003; 89: 37-44.         [ Links ]

7. Nishi M. Studies on the curing of denture base resins with microwave irradiation; with particular reference to heat-curing resins. J Osaka Dent Univ. 1968; 2: 23-40.         [ Links ]

8. Hayden WJ: Flexural strength of microwave-cured denture base plates. Gen Dent. 1986; 34: 367-71.         [ Links ]

9. Sanders JL, Levin B, Reitz PV. Porosity in denture acrylic resins cured by microwave energy. Quintessence Int. 1987; 18: 453-6.         [ Links ]

10. Takamata T, Setcos JC, Phillips RW, Boone ME. Adaptation of acrylic resin dentures as influenced by the activation mode of polymerization. J Am Dent Assoc. 1989; 119: 271-6.         [ Links ]

11. Braun KO, Rodrigues Garcia RCM, Rizzatti-Barbosa CM, Del Bel Cury AA. Linear dimensional change of denture base resins cured by microwave activation. Braz Oral Res. 2000; 14: 278-82.         [ Links ]

12. Yannikakis S, Zissis A, Polyzois G, Andreopoulos A. Evaluation of porosity in microwave-processed acrylic resin using a photographic method. J Prosthet Dent. 2002; 87: 613-9.         [ Links ]

13. Winkler S, Ortman HR, Morris HF, Plezia RA. Processing changes in complete dentures constructed from pour resins. J Am Dent Assoc. 1971; 82: 349-53.         [ Links ]

14. Reeson MG, Jepson NJA. Achieving an even thickness in heat-polymerized acrylic resin denture bases for complete dentures. J Prosthet Dent. 1999; 82: 359-61.         [ Links ]

15. Kawara M, Komiyama O, Kimoto S, Kobayashi N, Nemoto K. Distortion behavior of heat-activated acrylic denture-base resin in conventional and long, low-temperature processing methods. J Dent Res. 1998; 77: 1446-53.         [ Links ]

16. Barco MT, Moore BK, Swartz ML, Boone ME, Dykema RW, Phillips RW. The effect of relining on the accuracy and stability of maxillary complete dentures An in vitro and in vivo study. J Prosthet Dent. 1979; 42: 17-22.         [ Links ]

17. 17-Anthony DH, Peyton FA. Evaluating dimensional accuracy of denture bases with a modified comparator. J Prosthet Dent. 1959; 9: 683-92.         [ Links ]

18. 18-Polyzois GL. Improving the adaptation of denture base by anchorage to the casts: a comparative study. Quintessence Int.1990; 21: 185-90.         [ Links ]

19. Wesley RC, Henderson D, Frazier QZ, Rayson JH, Ellinger CW, Lutes MR et al. Processing changes in complete dentures: posterior tooth contacts and pin opening. J Prosthet Dent. 1973; 29: 46-53.         [ Links ]

20. Consani RLX, Domitti SS, Mesquita MF, Consani S. Influence of flask closure and flask cooling methods on tooth movement in maxillary dentures. J Prosthodont. 2006; 15: 229-34.         [ Links ]

21. Lorton L, Phillips RW. Heat-released stress in acrylic dentures. J Prosthet Dent. 1979; 42: 23-6.         [ Links ]

22. Stanford JW, Paffenbarger GC. Processing denture base resins: heat-cure type. J Am Dent Assoc. 1956; 53: 72-3.         [ Links ]

23. Yau WFE, Cheng YY, Clark RKF, Chow TW. Pressure and temperature changes in heat-cured acrylic resin during processing. Dent Mater. 2002; 18: 622-9.         [ Links ]

24. Becker CM, Smith DE, Nicholls JI. The comparison of denture base processing techniques. Part 1. Material characteristics. J Prosthet Dent. 1977; 37: 450-9.         [ Links ]

25. Reitz PV, Sanders JL, Levin B. The curing of denture acrylic resin by microwave energy. Physical properties.Quintessence Int. 1989; 16: 547-51.         [ Links ]

26. De Clerck JP. Microwave polymerization of acrylic resin used in dental prosthesis. J Prosthet Dent. 1987; 57: 650-8.         [ Links ]

27. 27-Al-Hanbali E, Kalleway JP, Howlett JA. Acrylic denture distortion following double processing with microwave or heat. J Dent. 1991; 19: 176-80.         [ Links ]

28. Levin B, Sanders JL, Reitz PV. The use of microwave energy for processing acrylic resins. J Prosthet Dent. 1989; 61: 381-3.         [ Links ]

29. Hogan PF, Mori T. Development of a method of continuous temperature measurement for microwave denture processing. Dent Mater. 1990; 9: 1-11.         [ Links ]

30. Kimura H, Teraoka F, Ohnishi H, Saito T, Yato M. Applications of microwave for dental technique (Part I). Dough forming and curing of acrylic resins. J Osaka Univ Dent Sch. 1983; 23: 43-9.         [ Links ]

 

 

Correspondence to:
Wagner Araujo de Negreiros
Rua Jovino Guedes 60, apto 1104, Aldeota, Fortaleza, CE, Brasil. CEP: 60140-130
Phone: +55 (85) 3067 9365 / 9162 9894
E-mail: wnegreiros@fop.unicamp.br

Received for publication: May 07, 2010
Accepted: August 25, 2010