Show simple item record

dc.contributor.authorYang, Xiaoyuen
dc.contributor.authorTucker, Paulen
dc.date.accessioned2015-12-03T15:41:30Z
dc.date.available2015-12-03T15:41:30Z
dc.date.issued2015-12-17en
dc.identifier.citationComputers & Fluids 2015, 126: 181–191. doi:10.1016/j.compfluid.2015.12.007en
dc.identifier.issn0045-7930
dc.identifier.urihttps://www.repository.cam.ac.uk/handle/1810/252827
dc.description.abstractTurbulence is substantially laminarised, when the mean flow experiences streamwise acceleration above a certain critical acceleration parameter. Recently, to essentially reveal aero engine intake acceleration scenarios, Direct Numerical Simulations (DNS) have been performed for turbulent flow through a rapidly contracting channel. On average, the streamwise acceleration parameter K_s is of the magnitude of 1×10^−5. Converged statistics show that it is the streamwise acceleration that causes the first term of the production rate for u′u′ to be negative. This initiates the degeneration towards laminar flow and also closes the usual wall turbulence self-sustaining mechanism. Further downstream, the progressive turbulence recovery is largely streamwise dominant. Importantly, the laminarisation effects are lagging to the rate of contraction. To assess the corresponding turbulence model performance and for better modelling, for the same flow configurations, Reynolds-averaged Navier-Stokes (RANS) predictions are compared, using some available Reynolds-stress (RSM) and eddy-viscosity models. These are the second-order closure with the strain-ω formulation, the standard k − ω and the Menter’s shear-stress transport (SST) models, the standard Spalart-Allmaras (S-A) model, and that with the strain-vorticity correction. As will be shown, through the contraction, all the benchmarked models are able to predict the essential characteristics of the laminarisation; whereas, further downstream, the eddy-viscosity models tend to return the flow immediately back to the fully developed turbulence. In contrast, the RSM predicts the gradually recovery process, in spite of the lower growth rate, relative to that of the DNS. The S-A model has been modified for the lagging mechanism caused by severe acceleration. The corresponding modified predictions better match the mean flow characteristics. Moreover, all models would also benefit from sensitisation to the impact of the large integral length scales.
dc.languageEnglishen
dc.language.isoenen
dc.publisherElsevier
dc.rightsAttribution 2.0 UK: England & Wales*
dc.rights.urihttp://creativecommons.org/licenses/by/2.0/uk/*
dc.subjectturbulenceen
dc.subjectturbulence modellingen
dc.subjectaccelerationen
dc.subjectReynolds-stress modelsen
dc.subjecteddy-viscosity modelsen
dc.subjectReynolds-averaged Navier-Stokes simulationen
dc.subjectcomputational fluid dynamicsen
dc.titleAssessment of turbulence model performance: Severe acceleration with large integral length scalesen
dc.typeArticle
dc.description.versionThis is the final version of the article. It was first available from Elsevier via http://dx.doi.org/10.1016/j.compfluid.2015.12.007en
prism.endingPage191
prism.publicationDate2015en
prism.publicationNameComputers & Fluidsen
prism.startingPage181
prism.volume126en
dcterms.dateAccepted2015-12-12en
rioxxterms.versionofrecord10.1016/j.compfluid.2015.12.007en
rioxxterms.licenseref.urihttp://www.rioxx.net/licenses/all-rights-reserveden
rioxxterms.licenseref.startdate2015-12-17en
dc.contributor.orcidTucker, Paul [0000-0002-0874-3269]
dc.identifier.eissn1879-0747
rioxxterms.typeJournal Article/Reviewen


Files in this item

Thumbnail

This item appears in the following Collection(s)

Show simple item record

Attribution 2.0 UK: England & Wales
Except where otherwise noted, this item's licence is described as Attribution 2.0 UK: England & Wales