Please use this identifier to cite or link to this item: http://hdl.handle.net/11422/8528
Full metadata record
DC FieldValueLanguage
dc.contributor.authorCerqueira, Ivana Gabriela dos Santos-
dc.contributor.authorMota, Carlos Alberto de Alencar-
dc.contributor.authorNunes, Jeziel da Silva-
dc.contributor.authorCotta, Renato Machado-
dc.contributor.authorBalbo, Andrea-
dc.contributor.authorAchete, Carlos Alberto-
dc.date.accessioned2019-06-26T16:13:48Z-
dc.date.available2023-12-21T03:06:03Z-
dc.date.issued2012-12-20-
dc.identifier.issn0145-7632pt_BR
dc.identifier.urihttp://hdl.handle.net/11422/8528-
dc.description.abstractThis work reports fundamental experimental-theoretical research related to heat transfer enhancement in laminar channel flow with nanofluids, which are essentially modifications of the base fluid with the dispersion of metal oxide nanoparticles. The nanofluids were synthesized by a two-step approach, using a dispersant and an ultrasound probe or a ball mill for alumina nanoparticles dispersion within the aqueous media. The theoretical work involves the proposition of an extension of the thermally developing flow model that accounts for the temperature variation of all the thermophysical properties, including viscosity and the consequent variation of the velocity profiles along the thermal entry region. The simulation was performed by making use of mixed symbolic-numerical computation on the Mathematica 7.0 platform and a hybrid numerical-analytical methodology (generalized integral transform technique, GITT) in accurately handling the governing partial differential equations for the heat and fluid flow problem formulation with temperature dependency in the thermophysical properties. Experimental work was also undertaken based on a thermohydraulic circuit built for this purpose, and sample results are presented to verify the proposed model. The aim is to confirm that both the constant properties and temperature-dependent properties models, besides available correlations previously established for ordinary fluids, provide adequate prediction of the heat transfer enhancement observed in laminar forced convection with such nanofluids and within the experimented Reynolds number range.en
dc.languageengpt_BR
dc.publisherTaylor & Francisen
dc.relation.ispartofHeat Transfer Engineeringen
dc.rightsAcesso Abertopt_BR
dc.subjectNanotechnologyen
dc.subjectNanofluidsen
dc.subjectHeat transferen
dc.subjectGeneralized integral transform techniqueen
dc.subjectThermohydraulicen
dc.titleExperiments and Simulations of Laminar Forced Convection With Water–Alumina Nanofluids in Circular Tubesen
dc.typeArtigopt_BR
dc.identifier.doi10.1080/01457632.2012.722433pt_BR
dc.description.resumoIndisponível.pt_BR
dc.publisher.countryBrasilpt_BR
dc.publisher.departmentNúcleo Interdisciplinar de Dinâmica dos Fluidospt_BR
dc.subject.cnpqCNPQ::CIENCIAS EXATAS E DA TERRA::FISICA::AREAS CLASSICAS DE FENOMENOLOGIA E SUAS APLICACOES::DINAMICA DOS FLUIDOSpt_BR
dc.citation.volume34pt_BR
dc.citation.issue5-6pt_BR
dc.citation.spage447pt_BR
dc.citation.epage459pt_BR
dc.embargo.terms365 diaspt_BR
Appears in Collections:Engenharias

Files in This Item:
File Description SizeFormat 
2013_CERQUEIRA_IG_-v34-min.pdf444.51 kBAdobe PDFView/Open


Items in DSpace are protected by copyright, with all rights reserved, unless otherwise indicated.