Optimization of the cooling system design for a compact high-power LED luminaire

Using the method of computer modelling, considered in this paper is optimization of a passive air system design for cooling the powerful LED luminaire based on heat pipes and cooling rings. Thermal and mass characteristics of the cooling system have been studied for various design parameters: distan...

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Main Authors: D.V. Pekur, Yu.E. Nikolaenko, V. Lashkaryov Institute of Semiconductor Physics, National Academy of Sciences of Ukraine, 41, prosp. Nauky, 03680 Kyiv, Ukraine
Format: Article
Language:English
Published: National Academy of Sciences of Ukraine. Institute of Semi conductor physics. 2020-03-01
Series:Semiconductor Physics, Quantum Electronics & Optoelectronics
Subjects:
led
Online Access:http://journal-spqeo.org.ua/n1_2020/P091-101abstr.html
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spelling doaj-aba81cc7e9484096b4e6b341ddf895e42020-11-25T02:31:20ZengNational Academy of Sciences of Ukraine. Institute of Semi conductor physics. Semiconductor Physics, Quantum Electronics & Optoelectronics 1560-80341605-65822020-03-0123019110110.15407/spqeo23.01.091Optimization of the cooling system design for a compact high-power LED luminaire D.V. Pekur0Yu.E. Nikolaenko1V. Lashkaryov Institute of Semiconductor Physics, National Academy of Sciences of Ukraine, 41, prosp. Nauky, 03680 Kyiv, Ukraine2V. Lashkaryov Institute of Semiconductor Physics, National Academy of Sciences of Ukraine, 41, prosp. Nauky, 03680 Kyiv, Ukraine, E-mail: demid.pekur@gmail.comNational Technical University of Ukraine “Igor Sikorsky Kyiv Polytechnic Institute”, 37, prosp. Peremohy, 03056 Kyiv, UkraineNational Technical University of Ukraine “Igor Sikorsky Kyiv Polytechnic Institute”, 37, prosp. Peremohy, 03056 Kyiv, UkraineUsing the method of computer modelling, considered in this paper is optimization of a passive air system design for cooling the powerful LED luminaire based on heat pipes and cooling rings. Thermal and mass characteristics of the cooling system have been studied for various design parameters: distance between rings, thickness of ring materials and thermal loads. It has been shown that, to provide a minimal case temperature of LED source, the optimal distance between cooling rings should be 6 mm, but in this case the mass of cooling system is not least. To reduce the luminaire mass, it is reasonable to choose the distance between the cooling rings equal to 8 mm. Then the temperature of light source increases by only 1.8 °С, or by 2.2%, while the mass of cooling system reduces by 1357 g, or by 20.5%. At the same time, lowering the ring thickness from 2 down to 0.8 mm can in addition reduce this mass by 2700 g, or by 48.6%. However, when doing so the temperature of LED source case is increased by 5.9 °С. The offered cooling system based on heat pipes is capable to provide the thermal resistance 0.131 С/W when scattering the thermal power 500 W under the maximum temperature of LED source crystal 135.5 С. Recommendations for application of the developed cooling system have been formulated. http://journal-spqeo.org.ua/n1_2020/P091-101abstr.htmlledcooling systemair coolingheat pipeoptimization
collection DOAJ
language English
format Article
sources DOAJ
author D.V. Pekur
Yu.E. Nikolaenko
V. Lashkaryov Institute of Semiconductor Physics, National Academy of Sciences of Ukraine, 41, prosp. Nauky, 03680 Kyiv, Ukraine
spellingShingle D.V. Pekur
Yu.E. Nikolaenko
V. Lashkaryov Institute of Semiconductor Physics, National Academy of Sciences of Ukraine, 41, prosp. Nauky, 03680 Kyiv, Ukraine
Optimization of the cooling system design for a compact high-power LED luminaire
Semiconductor Physics, Quantum Electronics & Optoelectronics
led
cooling system
air cooling
heat pipe
optimization
author_facet D.V. Pekur
Yu.E. Nikolaenko
V. Lashkaryov Institute of Semiconductor Physics, National Academy of Sciences of Ukraine, 41, prosp. Nauky, 03680 Kyiv, Ukraine
author_sort D.V. Pekur
title Optimization of the cooling system design for a compact high-power LED luminaire
title_short Optimization of the cooling system design for a compact high-power LED luminaire
title_full Optimization of the cooling system design for a compact high-power LED luminaire
title_fullStr Optimization of the cooling system design for a compact high-power LED luminaire
title_full_unstemmed Optimization of the cooling system design for a compact high-power LED luminaire
title_sort optimization of the cooling system design for a compact high-power led luminaire
publisher National Academy of Sciences of Ukraine. Institute of Semi conductor physics.
series Semiconductor Physics, Quantum Electronics & Optoelectronics
issn 1560-8034
1605-6582
publishDate 2020-03-01
description Using the method of computer modelling, considered in this paper is optimization of a passive air system design for cooling the powerful LED luminaire based on heat pipes and cooling rings. Thermal and mass characteristics of the cooling system have been studied for various design parameters: distance between rings, thickness of ring materials and thermal loads. It has been shown that, to provide a minimal case temperature of LED source, the optimal distance between cooling rings should be 6 mm, but in this case the mass of cooling system is not least. To reduce the luminaire mass, it is reasonable to choose the distance between the cooling rings equal to 8 mm. Then the temperature of light source increases by only 1.8 °С, or by 2.2%, while the mass of cooling system reduces by 1357 g, or by 20.5%. At the same time, lowering the ring thickness from 2 down to 0.8 mm can in addition reduce this mass by 2700 g, or by 48.6%. However, when doing so the temperature of LED source case is increased by 5.9 °С. The offered cooling system based on heat pipes is capable to provide the thermal resistance 0.131 С/W when scattering the thermal power 500 W under the maximum temperature of LED source crystal 135.5 С. Recommendations for application of the developed cooling system have been formulated.
topic led
cooling system
air cooling
heat pipe
optimization
url http://journal-spqeo.org.ua/n1_2020/P091-101abstr.html
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