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dc.contributor.authorDemarco, Giulianopt_BR
dc.contributor.authorMartins, Luis Gustavo Nogueirapt_BR
dc.contributor.authorBodmann, Bardo Ernst Josefpt_BR
dc.contributor.authorPuhales, Franciano Screminpt_BR
dc.contributor.authorAcevedo, Otávio Costapt_BR
dc.contributor.authorWittwer, Adrián Robertopt_BR
dc.contributor.authorCosta, Felipe Denardinpt_BR
dc.contributor.authorRoberti, Débora Reginapt_BR
dc.contributor.authorLoredo-Souza, Acir Mérciopt_BR
dc.contributor.authorDegrazia, Franco Caldaspt_BR
dc.contributor.authorTirabassi, Tizianopt_BR
dc.contributor.authorDegrazia, Gervasio Annespt_BR
dc.date.accessioned2023-07-01T03:37:48Zpt_BR
dc.date.issued2022pt_BR
dc.identifier.issn1660-4601pt_BR
dc.identifier.urihttp://hdl.handle.net/10183/259702pt_BR
dc.description.abstractThe aim of this paper is to analyse the thermal effects in a wind tunnel experiment to simulate the planetary boundary layer (PBL). Experiments were performed in the wind tunnel of the Laboratory of Constructions Aerodynamics at the Federal University of Rio Grande do Sul, Porto Alegre, Rio Grande do Sul State, Brazil. This wind tunnel is a closed return low-speed wind tunnel specifically designed for dynamic and static studies on civil construction models. As a novelty, one of the experimental sections of the wind tunnel was equipped with a metal sheet with Peltier elements coupled to it. In other words, thermal effects generating new flow patterns become feasible and open pathways to compare wind tunnel simulations to those in the PBL. Furthermore, measurements obtained with the smooth floor of the wind tunnel were repeated under the same conditions with the addition of the roughness in the floor, and the mechanical turbulence generated by the surface roughness significantly amplified the exchange of momentum and heat between the regions located in vertical direction of the wind tunnel boundary layer. In the presence of turbulent heat flux near the surface, thermal effects contribute to the increase of the turbulence intensity. Turbulent energy spectra for flow velocities and different heights were obtained using the Hilbert–Huang transform method, and the observed convective turbulence energy spectra behavior reproduced those measured in an unstable surface PBL.en
dc.format.mimetypeapplication/pdfpt_BR
dc.language.isoengpt_BR
dc.relation.ispartofInternational journal of environmental research and public health. Basel. Vol. 19, no. 9 (May 2022), art. 5134, 14 p.pt_BR
dc.rightsOpen Accessen
dc.subjectTúnel de ventopt_BR
dc.subjectWind tunnel experimentsen
dc.subjectThermal and roughness turbulent effectsen
dc.subjectAnálise térmicapt_BR
dc.subjectCamada limite atmosféricapt_BR
dc.subjectConvective boundary layeren
dc.subjectTurbulent energy spectraen
dc.subjectTurbulênciapt_BR
dc.titleAnalysis of thermal and roughness effects on the turbulent characteristics of experimentally simulated boundary layers in a wind tunnelpt_BR
dc.typeArtigo de periódicopt_BR
dc.identifier.nrb001168229pt_BR
dc.type.originEstrangeiropt_BR


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