Direct numerical simulation of turbulent flow and heat transfer in a concentric annular pipe

dc.contributor.authorBagheri, Edris
dc.contributor.examiningcommitteeOrmiston, Scott (Mechanical Engineering) Jeffrey, Ian (Electrical and Computer Engineering) Zingg, David (Institute for Aerospace Studies, University of Toronto)en_US
dc.contributor.supervisorWang, Bing-Chen (Mechanical Engineering)en_US
dc.date.accessioned2021-06-30T17:38:58Z
dc.date.available2021-06-30T17:38:58Z
dc.date.copyright2021-06-26
dc.date.issued2021-06en_US
dc.date.submitted2021-06-26T22:55:44Zen_US
dc.degree.disciplineMechanical Engineeringen_US
dc.degree.levelDoctor of Philosophy (Ph.D.)en_US
dc.description.abstractIn this thesis, the effects of computational domain size and radius ratio on fully developed turbulent flow and heat transfer in a concentric annular pipe are investigated using direct numerical simulation (DNS). To perform DNS, a new parallel computer code based on the pseudo-spectral method was developed using the FORTRAN 90/95 programing languages and the message passing interface (MPI) libraries. In order to study the effects of computational domain size on the turbulence statistics, twelve test cases of different domain sizes are compared. The effects of radius ratio are investigated through a systematic study based on four radius ratios of a concentric pipe. The characteristics of the velocity and temperature fields are examined at two Reynolds number of Re_(D_h ) =8900$ and 17700. The radius ratio affects the interaction of two boundary layers of the concentric annular pipe and has a significant impact on the turbulent flow structures and dynamics. The characteristics of the flow and temperature fields are investigated in both physical and spectral spaces, which include the analyses of the first- and second-order statistical moments, budget balance of the transport equation of Reynolds stresses, two-point correlation coefficients, and premultiplied spectra of velocity, vorticity, and temperature fluctuations. It is observed that the scales and dynamics of turbulence structures vary with the radius ratio as well as the surface curvature of the concave and convex walls. The characteristic length scales of the turbulence structures are identified through a spectral analysis.en_US
dc.description.noteOctober 2021en_US
dc.identifier.citationBagheri, E., Wang, B.-C., Yang, Z., 2020. Influence of domain size on direct numerical simulation of turbulent flow in a moderately-curved concentric annular pipe. Phys. Fluids. 32, 065105en_US
dc.identifier.citationBagheri, E., Wang, B.-C., 2020. The effects of radius ratio on turbulent concentric annular pipe ow and structures, Int. J. Heat Fluid Flow. 86, 108725en_US
dc.identifier.citationBagheri, E., Wang, B.-C., 2021. Direct numerical simulation of turbulent heat transfer in concentric annular pipe flows, Phys. Fluids. 33 (5), 055131en_US
dc.identifier.urihttp://hdl.handle.net/1993/35719
dc.language.isoengen_US
dc.rightsopen accessen_US
dc.subjectAnnular pipe flowen_US
dc.subjectTurbulenceen_US
dc.subjectHeat transferen_US
dc.subjectDirect numerical simulationen_US
dc.subjectpseudo-spectral methoden_US
dc.titleDirect numerical simulation of turbulent flow and heat transfer in a concentric annular pipeen_US
dc.typedoctoral thesisen_US
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