Literature DB >> 24220463

Microstrain around dental implants supporting fixed partial prostheses under axial and non-axial loading conditions, in vitro strain gauge analysis.

Luis Gustavo Oliveira de Vasconcellos1, Renato Sussumu Nishioka, Luana Marotta Reis de Vasconcellos, Ivan Balducci, Alberto Noriyuki Kojima.   

Abstract

The current study used strain gauge analysis to perform an in vitro evaluation of the effect of axial and non-axial loading on implant-supported fixed partial prostheses, varying the implant placement configurations and the loading points. Three internal hexagon implants were embedded in the center of each polyurethane block with in-line and offset placements. Microunit abutments were connected to the implants using a torque of 20 N · cm, and plastic prosthetic cylinders were screwed onto the abutments, which received standard patterns cast in Co-Cr alloy (n = 10). Four strain gauges (SGs) were bonded onto the surfaces of the blocks, tangentially to the implants: SG 01 mesially to implant 1, SG 02 and SG 03 mesially and distally to implant 2, respectively, and SG 04 distally to implant 3. Each metallic structure was screwed onto the abutments using a 10-N·cm torque, and axial and non-axial loads of 30 kg were applied at 5 predetermined points. The data obtained from the strain gauge analyses were analyzed statistically through the repeated measures analysis of variance and the Tukey test, with a conventional level of significance of P < 0.05. The results showed a statistically significant difference for the loading point (P = 0.0001), with point E (nonaxial) generating the highest microstrain (327.67 μ[Latin Small Letter Open E]) and point A (axial) generating the smallest microstrain (208.93 μ[Latin Small Letter Open E]). No statistically significant difference was found for implant placement configuration (P = 0.856). It was concluded that the offset implant placement did not reduce the magnitude of microstrain around the implants under axial and non-axial loading conditions, although loading location did influence this magnitude.

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Year:  2013        PMID: 24220463     DOI: 10.1097/SCS.0b013e31829ac83d

Source DB:  PubMed          Journal:  J Craniofac Surg        ISSN: 1049-2275            Impact factor:   1.046


  3 in total

1.  A biomechanical investigation of mandibular molar implants: reproducibility and validity of a finite element analysis model.

Authors:  Miyuki Omori; Yuji Sato; Noboru Kitagawa; Yuta Shimura; Manabu Ito
Journal:  Int J Implant Dent       Date:  2015-04-28

2.  Biomechanical effects of offset placement of dental implants in the edentulous posterior mandible.

Authors:  Yuta Shimura; Yuji Sato; Noboru Kitagawa; Miyuki Omori
Journal:  Int J Implant Dent       Date:  2016-06-17

3.  A strain gauge analysis comparing 4-unit veneered zirconium dioxide implant-borne fixed dental prosthesis on engaging and non-engaging abutments before and after torque application.

Authors:  Alyssa Epprecht; Marco Zeltner; Goran Benic; Mutlu Özcan
Journal:  Clin Exp Dent Res       Date:  2018-02-15
  3 in total

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