Analysis of a synthetic jet-based electronic cooling module

This article presents a numerical study of an electronic cooling module using a periodic jet flow at an orifice with net zero mass flux, known as a synthetic jet. The two-dimensional time-dependant numerical simulation models the unsteady synthetic jet behavior, the flow within the cavity and the di...

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Main Authors: Jagannatha, Deepak, Narayanaswamy, Ramesh, Chandratilleke, Tilak
Format: Journal Article
Published: Taylor and Francis 2009
Online Access:http://hdl.handle.net/20.500.11937/8271
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author Jagannatha, Deepak
Narayanaswamy, Ramesh
Chandratilleke, Tilak
author_facet Jagannatha, Deepak
Narayanaswamy, Ramesh
Chandratilleke, Tilak
author_sort Jagannatha, Deepak
building Curtin Institutional Repository
collection Online Access
description This article presents a numerical study of an electronic cooling module using a periodic jet flow at an orifice with net zero mass flux, known as a synthetic jet. The two-dimensional time-dependant numerical simulation models the unsteady synthetic jet behavior, the flow within the cavity and the diaphragm movement while accounting for fluid turbulence using the shear-stress-transport (SST) k-ω turbulence model. Computations are performed for a selected range of parameters and the boundary conditions to obtain the heat and fluid flow characteristics of the entire synthetic jet module. The numerical simulation aptly predicts the sequential formation of the synthetic jet and its intrinsic vortex shedding process while accurately illustrating the flow within the cavity. It is indicated that the thermal performance of the synthetic jet is highly dependant on the oscillating diaphragm amplitude and frequency. At the heated surface, this jet impingement mechanism produces a very intense localized periodic cooling effect that reaches a peak with a time lag relative to the top displacement position of the diaphragm. The overall heat transfer rate of the synthetic jet module is about 30% better than an equivalent continuous jet. When compared to pure natural convection the enhancement varies from 20 to 120 times in the range of parameters studied.The study clearly identifies the outstanding thermal potential of the synthetic jet module for intense electronic cooling applications and its ability to operate without additional fluid circuits.
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spelling curtin-20.500.11937-82712017-09-13T16:05:52Z Analysis of a synthetic jet-based electronic cooling module Jagannatha, Deepak Narayanaswamy, Ramesh Chandratilleke, Tilak This article presents a numerical study of an electronic cooling module using a periodic jet flow at an orifice with net zero mass flux, known as a synthetic jet. The two-dimensional time-dependant numerical simulation models the unsteady synthetic jet behavior, the flow within the cavity and the diaphragm movement while accounting for fluid turbulence using the shear-stress-transport (SST) k-ω turbulence model. Computations are performed for a selected range of parameters and the boundary conditions to obtain the heat and fluid flow characteristics of the entire synthetic jet module. The numerical simulation aptly predicts the sequential formation of the synthetic jet and its intrinsic vortex shedding process while accurately illustrating the flow within the cavity. It is indicated that the thermal performance of the synthetic jet is highly dependant on the oscillating diaphragm amplitude and frequency. At the heated surface, this jet impingement mechanism produces a very intense localized periodic cooling effect that reaches a peak with a time lag relative to the top displacement position of the diaphragm. The overall heat transfer rate of the synthetic jet module is about 30% better than an equivalent continuous jet. When compared to pure natural convection the enhancement varies from 20 to 120 times in the range of parameters studied.The study clearly identifies the outstanding thermal potential of the synthetic jet module for intense electronic cooling applications and its ability to operate without additional fluid circuits. 2009 Journal Article http://hdl.handle.net/20.500.11937/8271 10.1080/10407780903163702 Taylor and Francis restricted
spellingShingle Jagannatha, Deepak
Narayanaswamy, Ramesh
Chandratilleke, Tilak
Analysis of a synthetic jet-based electronic cooling module
title Analysis of a synthetic jet-based electronic cooling module
title_full Analysis of a synthetic jet-based electronic cooling module
title_fullStr Analysis of a synthetic jet-based electronic cooling module
title_full_unstemmed Analysis of a synthetic jet-based electronic cooling module
title_short Analysis of a synthetic jet-based electronic cooling module
title_sort analysis of a synthetic jet-based electronic cooling module
url http://hdl.handle.net/20.500.11937/8271