A new reactor geometry to treatment in scale of biomedical surfaces by plasma electrolytic oxidation

dc.contributor.authorPaiva, Ana Karenina de Oliveira
dc.contributor.authorNascimento Neto, Arlindo Balbino
dc.contributor.authorMelo, Andréa Santos Pinheiro de
dc.contributor.authorGuerra, Ângelo Roncalli Oliveira
dc.contributor.authorValentim, Ricardo Alexsandro de Medeiros
dc.contributor.authorGuerra Neto, Custódio Leopoldino de Brito
dc.date.accessioned2020-07-09T20:02:58Z
dc.date.available2020-07-09T20:02:58Z
dc.date.issued2019
dc.description.resumoThe state of the art report many studies seeking for biocompatible materials for manufacturing and processing of implants, mainly, for orthopedic and dental care. A wide spectrum of surface modification techniques are available, such as chemical vapor deposition, anodizing, plasma spraying and plasma electrolytic oxidation (PEO). Among these techniques, PEO is an attractive technique for biomedical applications once that its characteristics favor the osseointegration. Hitherto, the literature reports that all designed reactors are limited to processing a single sample at a time. A second limitation of the existing reactors, in terms of geometry, is the difficulty to obtain a uniform treatment on poly faceted pieces. In this context, the present study aimed to design, develop and manufacture a new reactor geometry to surface treatments, scaling it and with better uniformity. The prototype validation was performed through treatments of cylindrical titanium samples in electrolytic bath for 1, 8 and 16 minutes. To characterize the thickness of the coating on the samples, optical microscopy and scanning electronic microscopy were used. For the coating chemical, characterization technique such as energy dispersive spectroscopy, were applied. The wettability study was performed using the sessile drop method. The new reactor designed geometry presented promising results once that it was capable to produce homogeneous, porous hydrophilic coatings, and mechanical resistance to contact. The new reactor has shown ability to scale production. Finally, it is believed that there is a reduction in production costs because the same solution is used to a set of samplespt_BR
dc.identifier.citationPAIVA, A. K. O.; NASCIMENTO NETO, A. B.; GUERRA NETO, C. L. B.; MELO, A. S. P. ; GUERRA, A. R. O.; VALENTIM, R. A. M.. A new reactor geometry to treatment in scale of biomedical surfaces by plasma electrolytic oxidation. International Journal of Advanced Research, v. 7, p. 1012-1029, 2019. Disponível em: http://www.journalijar.com/article/28647/a-new-reactor-geometry-to-treatment-in-scale-of-biomedical-surfaces-by-plasma-electrolytic-oxidation/. Acesso em: 07 jul. 2020. http://dx.doi.org/10.21474/IJAR01/9306pt_BR
dc.identifier.doi10.21474/IJAR01/9306
dc.identifier.issn2320-5407
dc.identifier.urihttps://repositorio.ufrn.br/jspui/handle/123456789/29520
dc.languageenpt_BR
dc.publisherInternational Journal of Advanced Researchpt_BR
dc.rightsAttribution 3.0 Brazil*
dc.rights.urihttp://creativecommons.org/licenses/by/3.0/br/*
dc.subjectNew reactor geometrypt_BR
dc.subjectPlasma Electrolytic Oxidationpt_BR
dc.subjectPEO scalept_BR
dc.subjectBiomedical surfacespt_BR
dc.titleA new reactor geometry to treatment in scale of biomedical surfaces by plasma electrolytic oxidationpt_BR
dc.typearticlept_BR

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