Turbulent Mixed Convection

Turbulent mixed convection is a complicated flow where the buoyancy and shear forces compete with each other in affecting the flow dynamics. This thesis deals with the near wall dynamics in a turbulent mixed convection flow over an isothermal horizontal heated plate. We distinguish between two types...

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Main Author: Ramesh Chandra, D S
Other Authors: Arakeri, J H
Format: Others
Language:en
Published: Indian Institute of Science 2006
Subjects:
Online Access:http://hdl.handle.net/2005/236
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spelling ndltd-IISc-oai-etd.ncsi.iisc.ernet.in-2005-2362013-01-07T21:20:11ZTurbulent Mixed ConvectionRamesh Chandra, D SMechanical EngineringShear FlowConvection ModelNear Wall DynamicsFlow RegimesMonin-Obukhov TheoryWall Shear StressLow Speed Mixed Convection LSM)High Speed Mixed Convection (HSM)Turbulent mixed convection is a complicated flow where the buoyancy and shear forces compete with each other in affecting the flow dynamics. This thesis deals with the near wall dynamics in a turbulent mixed convection flow over an isothermal horizontal heated plate. We distinguish between two types of mixed convection ; low-speed mixed convection (LSM) and high-speed mixed convection (HSM). In LSM the entire boundary layer, including the near-wall region, is dominated by buoyancy; in HSM the near-wall region, is dominated by shear and the outer region by buoyancy. We show that the value of the parameter (* = ^ determines whether the flow is LSM or HSM. Here yr is the friction length scale and L is the Monin-Obukhov length scale. In the present thesis we proposed a model for the near-wall dynamics in LSM. We assume the coherent structure near-wall for low-speed mixed convection to be streamwise aligned periodic array of laminar plumes and give a 2d model for the near wall dynamics, Here the equation to solve for the streamwise velocity is linear with the vertical and spanwise velocities given by the free convection model of Theerthan and Arakeri [1]. We determine the profiles of streamwise velocity, Reynolds shear stress and RMS of the fluctuations of the three components of velocity. From the model we obtain the scaling for wall shear stress rw as rw oc (UooAT*), where Uoo is the free-stream velocity and AT is the temperature difference between the free-stream and the horizontal surface.A similar scaling for rw was obtained in the experiments of Ingersoll [5] and by Narasimha et al [11] in the atmospheric boundary layer under low wind speed conditions. We also derive a formula for boundary layer thickness 5(x) which predicts the boundary layer growth for the combination free-stream velocity Uoo and AT in the low-speed mixed convection regime.Indian Institute of ScienceArakeri, J H2006-08-28T05:26:19Z2006-08-28T05:26:19Z2006-08-28T05:26:19Z2000-04Electronic Thesis and Dissertation7489124 bytesapplication/pdfhttp://hdl.handle.net/2005/236nullenI grant Indian Institute of Science the right to archive and to make available my thesis or dissertation in whole or in part in all forms of media, now hereafter known. I retain all proprietary rights, such as patent rights. I also retain the right to use in future works (such as articles or books) all or part of this thesis or dissertation.
collection NDLTD
language en
format Others
sources NDLTD
topic Mechanical Enginering
Shear Flow
Convection Model
Near Wall Dynamics
Flow Regimes
Monin-Obukhov Theory
Wall Shear Stress
Low Speed Mixed Convection LSM)
High Speed Mixed Convection (HSM)
spellingShingle Mechanical Enginering
Shear Flow
Convection Model
Near Wall Dynamics
Flow Regimes
Monin-Obukhov Theory
Wall Shear Stress
Low Speed Mixed Convection LSM)
High Speed Mixed Convection (HSM)
Ramesh Chandra, D S
Turbulent Mixed Convection
description Turbulent mixed convection is a complicated flow where the buoyancy and shear forces compete with each other in affecting the flow dynamics. This thesis deals with the near wall dynamics in a turbulent mixed convection flow over an isothermal horizontal heated plate. We distinguish between two types of mixed convection ; low-speed mixed convection (LSM) and high-speed mixed convection (HSM). In LSM the entire boundary layer, including the near-wall region, is dominated by buoyancy; in HSM the near-wall region, is dominated by shear and the outer region by buoyancy. We show that the value of the parameter (* = ^ determines whether the flow is LSM or HSM. Here yr is the friction length scale and L is the Monin-Obukhov length scale. In the present thesis we proposed a model for the near-wall dynamics in LSM. We assume the coherent structure near-wall for low-speed mixed convection to be streamwise aligned periodic array of laminar plumes and give a 2d model for the near wall dynamics, Here the equation to solve for the streamwise velocity is linear with the vertical and spanwise velocities given by the free convection model of Theerthan and Arakeri [1]. We determine the profiles of streamwise velocity, Reynolds shear stress and RMS of the fluctuations of the three components of velocity. From the model we obtain the scaling for wall shear stress rw as rw oc (UooAT*), where Uoo is the free-stream velocity and AT is the temperature difference between the free-stream and the horizontal surface.A similar scaling for rw was obtained in the experiments of Ingersoll [5] and by Narasimha et al [11] in the atmospheric boundary layer under low wind speed conditions. We also derive a formula for boundary layer thickness 5(x) which predicts the boundary layer growth for the combination free-stream velocity Uoo and AT in the low-speed mixed convection regime.
author2 Arakeri, J H
author_facet Arakeri, J H
Ramesh Chandra, D S
author Ramesh Chandra, D S
author_sort Ramesh Chandra, D S
title Turbulent Mixed Convection
title_short Turbulent Mixed Convection
title_full Turbulent Mixed Convection
title_fullStr Turbulent Mixed Convection
title_full_unstemmed Turbulent Mixed Convection
title_sort turbulent mixed convection
publisher Indian Institute of Science
publishDate 2006
url http://hdl.handle.net/2005/236
work_keys_str_mv AT rameshchandrads turbulentmixedconvection
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