Experimental study on a hybrid loop heat pipe

A conventional loop heat pipe two-phase heat transfer device of passive system often can no longer meet the challenging cooling needs due to the inherent limitations of the capillary pumping which can lead to dry out. This study aims to create a loop heat pipe uses capillary wick copper sintered wit...

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Main Authors: Setyawan Iwan, Ibnu Hakim Imansyah, Putra Nandy
Format: Article
Language:English
Published: EDP Sciences 2017-01-01
Series:MATEC Web of Conferences
Online Access:https://doi.org/10.1051/matecconf/201710103011
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spelling doaj-df3adecf9cce496fa338da11dbea8eed2021-03-02T10:32:06ZengEDP SciencesMATEC Web of Conferences2261-236X2017-01-011010301110.1051/matecconf/201710103011matecconf_sicest2017_03011Experimental study on a hybrid loop heat pipeSetyawan IwanIbnu Hakim ImansyahPutra NandyA conventional loop heat pipe two-phase heat transfer device of passive system often can no longer meet the challenging cooling needs due to the inherent limitations of the capillary pumping which can lead to dry out. This study aims to create a loop heat pipe uses capillary wick copper sintered with centrifugal casting method. The stressing effort to overcome the dry-out by adding a diaphragm pump to accelerate the fluid transportation from the condenser to the evaporator (hybrid loop heat pipe, HLHP), where the pump is equipped with a reservoir and both installed on the liquid line. In testing the performance of HLHP also varying the filling ratio, FR: 50%, 60%, and 80%. The pump will be activated when the dry-out took place, by the piezo electric diaphragm pump with temperature controller installed in the evaporator that was set to activate the pump to work. From the results of the experimental, the pump successfully prevented the occurrence of dry out, and reduced the temperature of the evaporator from 130°C to 80°C, owing the pump distributed the working fluid from the condenser to the evaporator efficiently. The result indicated the best performance of HLHP was filling ratio, FR of 60%.https://doi.org/10.1051/matecconf/201710103011
collection DOAJ
language English
format Article
sources DOAJ
author Setyawan Iwan
Ibnu Hakim Imansyah
Putra Nandy
spellingShingle Setyawan Iwan
Ibnu Hakim Imansyah
Putra Nandy
Experimental study on a hybrid loop heat pipe
MATEC Web of Conferences
author_facet Setyawan Iwan
Ibnu Hakim Imansyah
Putra Nandy
author_sort Setyawan Iwan
title Experimental study on a hybrid loop heat pipe
title_short Experimental study on a hybrid loop heat pipe
title_full Experimental study on a hybrid loop heat pipe
title_fullStr Experimental study on a hybrid loop heat pipe
title_full_unstemmed Experimental study on a hybrid loop heat pipe
title_sort experimental study on a hybrid loop heat pipe
publisher EDP Sciences
series MATEC Web of Conferences
issn 2261-236X
publishDate 2017-01-01
description A conventional loop heat pipe two-phase heat transfer device of passive system often can no longer meet the challenging cooling needs due to the inherent limitations of the capillary pumping which can lead to dry out. This study aims to create a loop heat pipe uses capillary wick copper sintered with centrifugal casting method. The stressing effort to overcome the dry-out by adding a diaphragm pump to accelerate the fluid transportation from the condenser to the evaporator (hybrid loop heat pipe, HLHP), where the pump is equipped with a reservoir and both installed on the liquid line. In testing the performance of HLHP also varying the filling ratio, FR: 50%, 60%, and 80%. The pump will be activated when the dry-out took place, by the piezo electric diaphragm pump with temperature controller installed in the evaporator that was set to activate the pump to work. From the results of the experimental, the pump successfully prevented the occurrence of dry out, and reduced the temperature of the evaporator from 130°C to 80°C, owing the pump distributed the working fluid from the condenser to the evaporator efficiently. The result indicated the best performance of HLHP was filling ratio, FR of 60%.
url https://doi.org/10.1051/matecconf/201710103011
work_keys_str_mv AT setyawaniwan experimentalstudyonahybridloopheatpipe
AT ibnuhakimimansyah experimentalstudyonahybridloopheatpipe
AT putranandy experimentalstudyonahybridloopheatpipe
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