Microscale heat transfer in macro geometries
The escalating heat dissipation problem in electronic devices has become the key driver to numerous investigations on new cooling techniques, including the heavily-researched microchannel heat sink. However, literature shows that microscale heat transfer is generally not being applied to macro geome...
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sg-ntu-dr.10356-1049942019-12-06T21:44:12Z Microscale heat transfer in macro geometries Kong, Kian Shing Ooi, Kim Tiow School of Mechanical and Aerospace Engineering Intersociety Conference on Thermal and Thermomechanical Phenomena in Electronic Systems (13th : 2012 : San Diego, USA) The escalating heat dissipation problem in electronic devices has become the key driver to numerous investigations on new cooling techniques, including the heavily-researched microchannel heat sink. However, literature shows that microscale heat transfer is generally not being applied to macro geometries, which is believed largely due to the fabrication and operational challenges. In present study, experiments were conducted to attain high heat removal capabilities comparable to that of microchannels in a circular channel of conventional size, which was manufactured through conventional techniques. The channel is 20 mm in diameter and 30 mm in length. Inserts of different sizes and profiles were inserted into the flow channel, one at a time, to make the annular flow path small enough to behave like a microchannel. The gap size of the flow channels experimented ranges from 200 to 1000 μm. Experimental results obtained showed that the design was able to achieve a maximum heat transfer coefficient of 79,000 W/m2·K with single-phase water flowing through the annular channel of gap size of 200 μm at Reynolds number of 5600. 2013-10-24T07:15:31Z 2019-12-06T21:44:12Z 2013-10-24T07:15:31Z 2019-12-06T21:44:12Z 2012 2012 Conference Paper Kong, K. S., & Ooi, K.T. (2012). Microscale heat transfer in macro geometries. 13th InterSociety Conference on Thermal and Thermomechanical Phenomena in Electronic Systems, 669-676. https://hdl.handle.net/10356/104994 http://hdl.handle.net/10220/16782 http://dx.doi.org/10.1109/ITHERM.2012.6231492 en |
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The escalating heat dissipation problem in electronic devices has become the key driver to numerous investigations on new cooling techniques, including the heavily-researched microchannel heat sink. However, literature shows that microscale heat transfer is generally not being applied to macro geometries, which is believed largely due to the fabrication and operational challenges. In present study, experiments were conducted to attain high heat removal capabilities comparable to that of microchannels in a circular channel of conventional size, which was manufactured through conventional techniques. The channel is 20 mm in diameter and 30 mm in length. Inserts of different sizes and profiles were inserted into the flow channel, one at a time, to make the annular flow path small enough to behave like a microchannel. The gap size of the flow channels experimented ranges from 200 to 1000 μm. Experimental results obtained showed that the design was able to achieve a maximum heat transfer coefficient of 79,000 W/m2·K with single-phase water flowing through the annular channel of gap size of 200 μm at Reynolds number of 5600. |
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School of Mechanical and Aerospace Engineering |
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School of Mechanical and Aerospace Engineering Kong, Kian Shing Ooi, Kim Tiow |
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Conference or Workshop Item |
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Kong, Kian Shing Ooi, Kim Tiow |
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Kong, Kian Shing Ooi, Kim Tiow Microscale heat transfer in macro geometries |
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Kong, Kian Shing |
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Microscale heat transfer in macro geometries |
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Microscale heat transfer in macro geometries |
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Microscale heat transfer in macro geometries |
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Microscale heat transfer in macro geometries |
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Microscale heat transfer in macro geometries |
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microscale heat transfer in macro geometries |
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2013 |
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https://hdl.handle.net/10356/104994 http://hdl.handle.net/10220/16782 http://dx.doi.org/10.1109/ITHERM.2012.6231492 |
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