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Combined Effects of Axial Flow and High System Rotation on the Fluid Dynamics of Taylor-Couette-Poiseuille Flow

dc.contributor.authorCosgun, Taner
dc.contributor.authorVardar, Nurten
dc.date.accessioned2026-06-27T14:58:20Z
dc.date.issued2024
dc.description.abstractTaylor-Couette-Poiseuille (TCP) flow, characterized by the flow through an inner rotating shaft and an outer stationary cylinder, is a fundamental flow system in many industrial applications, including ship stern tubes, turbomachinery, journal bearings, and offshore drilling. Understanding the hydrodynamics of the TCP flow offers significant benefits for ensuring the robust design and operational efficiency of such systems. This paper presents the numerical modeling of turbulent TCP flow to assess the combined effects of two key control parameters-axial Reynolds number (10000-30000) and Taylor number (2.2x107-3.1x109)-on the fluid dynamics within the system. Using Reynolds Stress Modeling, this study investigates the behavior of TCP flow at high Reynolds numbers, which is relevant to real-world rotating machinery. The results indicate that the interaction between rotation and axial flow is not linear, with high rotation rates showing distinct behavior from low rotation rates, especially in the throughflow effects. At low and moderate rotation numbers (N), both the mean and turbulent variables display strong dependence on the rotational velocity and axial flow rate. However, further increases in N lead the flow field to be increasingly dominated by the contribution of rotation, and mean flow variables become relatively independent of the imposed flow rate. Furthermore, systematic deviations from the log-law in the boundary layer velocity profiles further emphasize the need to account for the combined effects of rotation and axial flow in the TCP flow system design and operation.en
dc.description.urihttps://doi.org/10.4274/jems.2024.67689
dc.identifier.doi10.4274/jems.2024.67689
dc.identifier.eissn2148-9386
dc.identifier.endpage345
dc.identifier.issue3
dc.identifier.startpage332
dc.identifier.urihttps://hdl.handle.net/20.500.14981/66597
dc.identifier.volume12
dc.identifier.wos001337732100010
dc.language.isoeng
dc.publisherGALENOS PUBL HOUSE
dc.relation.ispartofJOURNAL OF ETA MARITIME SCIENCE
dc.rightsopenAccess
dc.subjectTaylor-Couette-Poiseuille flow
dc.subjectAnnular flow
dc.subjectTurbulence
dc.subjectComputational fluid dynamics
dc.subjectConcentric annulus
dc.subjectStern tube
dc.subjectCONVECTIVE HEAT-TRANSFER
dc.subjectLARGE-EDDY SIMULATION
dc.subjectTURBULENT-FLOW
dc.subjectSTABILITY
dc.subjectCYLINDER
dc.subjectVELOCITY
dc.subjectSTRESS
dc.subjectREGION
dc.subjectEngineering
dc.subjectTransportation
dc.titleCombined Effects of Axial Flow and High System Rotation on the Fluid Dynamics of Taylor-Couette-Poiseuille Flow
dc.typeArticle
dspace.entity.typePublication
local.import.sourceWOS

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