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Digital image correlation analysis of the load transfer by implant-supported restorations
Authors:Tiossi Rodrigo  Lin Lianshan  Rodrigues Renata C S  Heo Young C  Conrad Heather J  de Mattos Maria da Gloria C  Ribeiro Ricardo F  Fok Alex S L
Institution:1. Department of Dental Materials and Prosthodontics, Dental School of Ribeirão Preto, University of São Paulo, Av. do Café, s/n, Monte Alegre, 14040-904, Ribeirão Preto, São Paulo, Brazil;2. Minnesota Dental Research Center for Biomaterials and Biomechanics, School of Dentistry, University of Minnesota, 16-212 Moos Tower, 515 Delaware Street SE, 55455, Minneapolis, MN, USA;3. Department of Restorative Sciences, School of Dentistry, University of Minnesota, 9-450a Moos Tower, 515 Delaware Street SE, 55455, Minneapolis, MN, USA
Abstract:This study compared splinted and non-splinted implant-supported prosthesis with and without a distal proximal contact using a digital image correlation method. An epoxy resin model was made with acrylic resin replicas of a mandibular first premolar and second molar and with threaded implants replacing the second premolar and first molar. Splinted and non-splinted metal-ceramic screw-retained crowns were fabricated and loaded with and without the presence of the second molar. A single-camera measuring system was used to record the in-plane deformation on the model surface at a frequency of 1.0Hz under a load from 0 to 250N. The images were then analyzed with specialist software to determine the direct (horizontal) and shear strains along the model. Not splinting the crowns resulted in higher stress transfer to the supporting implants when the second molar replica was absent. The presence of a second molar and an effective interproximal contact contributed to lower stress transfer to the supporting structures even for non-splinted restorations. Shear strains were higher in the region between the molars when the second molar was absent, regardless of splinting. The opposite was found for the region between the implants, which had higher shear strain values when the second molar was present. When an effective distal contact is absent, non-splinted implant-supported restorations introduce higher direct strains to the supporting structures under loading. Shear strains appear to be dependent also on the region within the model, with different regions showing different trends in strain changes in the absence of an effective distal contact.
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