Literature DB >> 17558473

Load bearing capacity of bone anchored fiber-reinforced composite device.

Ahmed Mansour Ballo1, Lippo V Lassila, Pekka K Vallittu, Timo O Närhi.   

Abstract

The purpose of this study was to evaluate the push-out load-bearing capacity of threaded fiber-reinforced composite (FRC) devices for use as bone-anchored devices. The purpose was also to evaluate the possibility to use bioactive glass (BAG) granules on the experimental FRC devices in terms the mechanical behavior. Three experimental FRC devices (n = 15) were fabricated for the study: (a) threaded device with smooth surface; (b) threaded device with BAG granules (S53P4, Vivoxid Ltd, Turku, Finland) and supplementary retention grooves, and (c) unthreaded device with BAG granules. Threaded titanium devices were used as controls. The FRC devices were prepared from a light-polymerized dimethacrylate resin reinforced with preimpregnated unidirectional and bidirectional E-glass fibers (EverStick, StickTech Ltd, Turku, Finland). Experimental and control devices were embedded into dental plaster to simulate bone before the mechanical push-out test was carried out. ANOVA and Weibull analysis were used for the statistical evaluation. Threaded FRC devices had significantly higher push-out strength than the threaded titanium device (p < .001). The push-out forces exceeding 2,500 N were measured for threaded FRC devices with supplementary grooves and BAG coating. No thread failures were observed in any FRC devices. The unthreaded FRC devices with BAG lost 70% of glass particles during the test, while no BAG particles were lost from threaded FRC devices. It can be concluded that threaded FRC devices can withstand high push-out forces in the dental plaster without a risk of thread failure under physiological load.

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Year:  2007        PMID: 17558473     DOI: 10.1007/s10856-007-3159-6

Source DB:  PubMed          Journal:  J Mater Sci Mater Med        ISSN: 0957-4530            Impact factor:   3.896


  37 in total

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Journal:  J Mater Sci Mater Med       Date:  2001 Oct-Dec       Impact factor: 3.896

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8.  Clinical results of an open prospective study of a bis-GMA composite in percutaneous vertebral augmentation.

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  6 in total

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2.  Surface modification of fiber reinforced polymer composites and their attachment to bone simulating material.

Authors:  M P Hautamäki; M Puska; A J Aho; H M Kopperud; P K Vallittu
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4.  Osteoblast response to polymethyl methacrylate bioactive glass composite.

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5.  The effect of exposed glass fibers and particles of bioactive glass on the surface wettability of composite implants.

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6.  Bioactive glass BAG-S53P4 for the adjunctive treatment of chronic osteomyelitis of the long bones: an in vitro and prospective clinical study.

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  6 in total

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