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Fluid flow and heat transfer in transitional boundary layers: Effects of surface curvature and free stream velocity

dc.contributor.buuauthorUmur, H.
dc.contributor.buuauthorÖzalp, A. Alper
dc.contributor.departmentMühendislik Mimarlık Fakültesi
dc.contributor.departmentMakine Mühendisliği Bölümü
dc.contributor.orcid0000-0002-4976-9027
dc.contributor.researcheridABI-6888-2020
dc.contributor.scopusid6602945164
dc.contributor.scopusid6506131689
dc.date.accessioned2022-01-04T07:20:52Z
dc.date.available2022-01-04T07:20:52Z
dc.date.issued2006-11
dc.description.abstractVelocity and wall temperature measurements, over flat plate, concave and convex walls, were experimentally investigated in a low-speed wind tunnel with inlet velocities of 4 and 12 m/s encompassing the transitional region with streamwise distance Reynolds numbers from 3.15x10(5) to 1.04x10(6). As the velocity profiles, recorded by a semi-circular pitot tube and a digital constant-temperature hot-wire anemometer, were compared to exact Blasius profile and (1/7)th power law, experimental local Stanton numbers to analytical flat plate solution and turbulent correlation formula. Intermittency factors, derived from velocities and local Stanton numbers, were presented both in streamwise and pitchwise directions. It was found that the convex curvature delayed transition up to Re (x) =1.04x10(6), with a mean intermittency value of 0.61 and a shape factor of 1.81, where the similar intermittency and shape factors were determined at Re (x) of 8.33x10(5) and 4.25x10(5) for the flat plate and concave wall, indicating the enhancing role of concave curvature on the transition mechanism. The thinner boundary layers of the concave surface resulted in higher intermittency values, corresponding to higher skin friction and Stanton numbers; moreover the lowest gap between the measured and derived Stanton numbers were also obtained over the concave surface. Destabilising role of the concave wall caused Stanton numbers to increase up to 22%, whereas the convex wall, due to its stabilising character, produced lower Stanton numbers by 12% with respect to those of the flat plate.
dc.identifier.citationUmur, H. ve Özalp, A. A. (2006). ''Fluid flow and heat transfer in transitional boundary layers: Effects of surface curvature and free stream velocity''. Heat and Mass Transfer, 43(1), 7-15.
dc.identifier.doi10.1007/s00231-005-0080-8
dc.identifier.endpage15
dc.identifier.issn0947-7411
dc.identifier.issue1
dc.identifier.scopus2-s2.0-33749248854
dc.identifier.startpage7
dc.identifier.urihttps://doi.org/10.1007/s00231-005-0080-8
dc.identifier.urihttps://link.springer.com/article/10.1007%2Fs00231-005-0080-8
dc.identifier.urihttp://hdl.handle.net/11452/23835
dc.identifier.volume43
dc.identifier.wos000240803600002
dc.indexed.wosSCIE
dc.language.isoen
dc.publisherSpringer
dc.relation.journalHeat and Mass Transfer
dc.relation.publicationcategoryMakale - Uluslararası Hakemli Dergi
dc.rightsinfo:eu-repo/semantics/closedAccess
dc.subjectThermodynamics
dc.subjectMechanics
dc.subjectStraight
dc.subjectLaminar
dc.subjectTurbulence
dc.subjectIntermittency
dc.subjectThermal structures
dc.subjectTransfer enhancement
dc.subjectWind tunnels
dc.subjectThermal effects
dc.subjectStream flow
dc.subjectReynolds number
dc.subjectHeat transfer
dc.subjectFlow of fluids
dc.subjectTurbulent correlation formula
dc.subjectTransitional boundary layers
dc.subjectPower law
dc.subjectPitot tubes
dc.subjectBoundary layers
dc.subject.scopusBoundary Layer Transition; Transition Model; Cascade Wind Tunnels
dc.subject.wosThermodynamics
dc.subject.wosMechanics
dc.titleFluid flow and heat transfer in transitional boundary layers: Effects of surface curvature and free stream velocity
dc.typeArticle
dc.wos.quartileQ4
dspace.entity.typePublication
local.contributor.departmentMühendislik Mimarlık Fakültesi/Makine Mühendisliği Bölümü
local.indexed.atScopus
local.indexed.atWOS

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