Thermal enhancement in microfluid passages by synthetic jets

This paper examines the characteristics of a pulsating fluid jet known as synthetic jet and its cooling effectiveness for heated micro fluid passages. The jet mechanism uses an oscillating diaphragm to inject a high-frequency fluid jet with a zero net mass flow through the jet orifice. The pulsed je...

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Main Authors: Chandratilleke, Tilak, Jagannatha, Deepak, Narayanaswamy, Ramesh
Other Authors: Amit Agrawal and others
Format: Conference Paper
Published: Research Publishing Services 2010
Online Access:http://rpsonline.com.sg/proceedings/9789810838133/html/118.php
http://hdl.handle.net/20.500.11937/7529
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author Chandratilleke, Tilak
Jagannatha, Deepak
Narayanaswamy, Ramesh
author2 Amit Agrawal and others
author_facet Amit Agrawal and others
Chandratilleke, Tilak
Jagannatha, Deepak
Narayanaswamy, Ramesh
author_sort Chandratilleke, Tilak
building Curtin Institutional Repository
collection Online Access
description This paper examines the characteristics of a pulsating fluid jet known as synthetic jet and its cooling effectiveness for heated micro fluid passages. The jet mechanism uses an oscillating diaphragm to inject a high-frequency fluid jet with a zero net mass flow through the jet orifice. The pulsed jet and the micro passage flow interaction is modelled as a 2-dimensional finite volume simulation with unsteady Reynolds averaged Navier-Stokes equations. For a range of conditions, the special characteristics of this periodically interrupted flow are identified while predicting the associated convective heat transfer rates. The results indicate that the pulsating jet leads to outstanding thermal performance in the micro passage increasing its heat dissipation by about 4.3 times compared to a micro passage without jet interaction within the tested parametric range. The degree of enhancement is first seen to grow gently and then rather rapidly beyond a certain flow condition to reach a steady value. The proposed strategy has the unique intrinsic ability to generate outstanding degree of thermal enhancement in a micro passage without increasing its flow pressure drop. The technique is envisaged to have application potential in miniature electronic devices where localised cooling is desired over a base heat dissipation load.
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format Conference Paper
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institution Curtin University Malaysia
institution_category Local University
last_indexed 2025-11-14T06:16:40Z
publishDate 2010
publisher Research Publishing Services
recordtype eprints
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spelling curtin-20.500.11937-75292017-01-30T11:00:26Z Thermal enhancement in microfluid passages by synthetic jets Chandratilleke, Tilak Jagannatha, Deepak Narayanaswamy, Ramesh Amit Agrawal and others This paper examines the characteristics of a pulsating fluid jet known as synthetic jet and its cooling effectiveness for heated micro fluid passages. The jet mechanism uses an oscillating diaphragm to inject a high-frequency fluid jet with a zero net mass flow through the jet orifice. The pulsed jet and the micro passage flow interaction is modelled as a 2-dimensional finite volume simulation with unsteady Reynolds averaged Navier-Stokes equations. For a range of conditions, the special characteristics of this periodically interrupted flow are identified while predicting the associated convective heat transfer rates. The results indicate that the pulsating jet leads to outstanding thermal performance in the micro passage increasing its heat dissipation by about 4.3 times compared to a micro passage without jet interaction within the tested parametric range. The degree of enhancement is first seen to grow gently and then rather rapidly beyond a certain flow condition to reach a steady value. The proposed strategy has the unique intrinsic ability to generate outstanding degree of thermal enhancement in a micro passage without increasing its flow pressure drop. The technique is envisaged to have application potential in miniature electronic devices where localised cooling is desired over a base heat dissipation load. 2010 Conference Paper http://hdl.handle.net/20.500.11937/7529 http://rpsonline.com.sg/proceedings/9789810838133/html/118.php Research Publishing Services restricted
spellingShingle Chandratilleke, Tilak
Jagannatha, Deepak
Narayanaswamy, Ramesh
Thermal enhancement in microfluid passages by synthetic jets
title Thermal enhancement in microfluid passages by synthetic jets
title_full Thermal enhancement in microfluid passages by synthetic jets
title_fullStr Thermal enhancement in microfluid passages by synthetic jets
title_full_unstemmed Thermal enhancement in microfluid passages by synthetic jets
title_short Thermal enhancement in microfluid passages by synthetic jets
title_sort thermal enhancement in microfluid passages by synthetic jets
url http://rpsonline.com.sg/proceedings/9789810838133/html/118.php
http://hdl.handle.net/20.500.11937/7529