Large eddy simulations of flow field and heat transfer under partially confined slot jet impingement on a vibrating constant heat flux surface

The paper describes the effect of oscillation of an impingement surface under a partially confined slot jet. Both the flow characteristics and the heat transfer characteristics are explored and presented. The numerical conditions were as follows: Reynolds number Re = 1000-2000, dimensionless distanc...

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Main Authors: Natarajan, T., Jewkes, J., Narayanaswamy, Ramesh, Chung, Y., Lucey, A.
Format: Conference Paper
Published: 2014
Online Access:http://hdl.handle.net/20.500.11937/58138
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author Natarajan, T.
Jewkes, J.
Narayanaswamy, Ramesh
Chung, Y.
Lucey, A.
author_facet Natarajan, T.
Jewkes, J.
Narayanaswamy, Ramesh
Chung, Y.
Lucey, A.
author_sort Natarajan, T.
building Curtin Institutional Repository
collection Online Access
description The paper describes the effect of oscillation of an impingement surface under a partially confined slot jet. Both the flow characteristics and the heat transfer characteristics are explored and presented. The numerical conditions were as follows: Reynolds number Re = 1000-2000, dimensionless distance between the nozzle and the impingement surface h/B = 4.0, surface oscillation frequency, f = 0-100 Hz and the amplitude a = 1.0 mm. The experimental data of Ichimiya and Yoshida [5] are taken as a baseline case and the present numerical results are compared with the experimental studies. The results compare well with the experimental work. The present numerical work serves as the basis for a wider study intended to optimise the thermofluidic characteristics of jets impinging upon oscillating surfaces.
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institution Curtin University Malaysia
institution_category Local University
last_indexed 2025-11-14T10:11:50Z
publishDate 2014
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spelling curtin-20.500.11937-581382017-11-20T08:50:28Z Large eddy simulations of flow field and heat transfer under partially confined slot jet impingement on a vibrating constant heat flux surface Natarajan, T. Jewkes, J. Narayanaswamy, Ramesh Chung, Y. Lucey, A. The paper describes the effect of oscillation of an impingement surface under a partially confined slot jet. Both the flow characteristics and the heat transfer characteristics are explored and presented. The numerical conditions were as follows: Reynolds number Re = 1000-2000, dimensionless distance between the nozzle and the impingement surface h/B = 4.0, surface oscillation frequency, f = 0-100 Hz and the amplitude a = 1.0 mm. The experimental data of Ichimiya and Yoshida [5] are taken as a baseline case and the present numerical results are compared with the experimental studies. The results compare well with the experimental work. The present numerical work serves as the basis for a wider study intended to optimise the thermofluidic characteristics of jets impinging upon oscillating surfaces. 2014 Conference Paper http://hdl.handle.net/20.500.11937/58138 restricted
spellingShingle Natarajan, T.
Jewkes, J.
Narayanaswamy, Ramesh
Chung, Y.
Lucey, A.
Large eddy simulations of flow field and heat transfer under partially confined slot jet impingement on a vibrating constant heat flux surface
title Large eddy simulations of flow field and heat transfer under partially confined slot jet impingement on a vibrating constant heat flux surface
title_full Large eddy simulations of flow field and heat transfer under partially confined slot jet impingement on a vibrating constant heat flux surface
title_fullStr Large eddy simulations of flow field and heat transfer under partially confined slot jet impingement on a vibrating constant heat flux surface
title_full_unstemmed Large eddy simulations of flow field and heat transfer under partially confined slot jet impingement on a vibrating constant heat flux surface
title_short Large eddy simulations of flow field and heat transfer under partially confined slot jet impingement on a vibrating constant heat flux surface
title_sort large eddy simulations of flow field and heat transfer under partially confined slot jet impingement on a vibrating constant heat flux surface
url http://hdl.handle.net/20.500.11937/58138