Browse > Article
http://dx.doi.org/10.5228/KSTP.2011.20.7.473

Performance Evaluation of a Thermo Siphon Type Radiator for LED Lighting System by using an Inverse Heat Transfer Method  

Kim, E.H. (인하대학교 대학원 기계공학과)
Kim, H.K. (한국생산기술연구원 금형.성형연구그룹)
Seo, K.S. ((주)이노캐스트 기술연구소)
Lee, M.K. (인하대학교 대학원 기계공학과)
Cho, C.D. (인하대학교 기계공학과)
Publication Information
Transactions of Materials Processing / v.20, no.7, 2011 , pp. 473-478 More about this Journal
Abstract
In this study, the performance of a thermo siphon type radiator made of copper for LED lighting system was evaluated by using an inverse heat transfer method. Heating experiments and finite element heat transfer analysis were conducted for three different cases. The data obtained from experiments were compared with the analysis results. Based on the data obtained from experiments, the inverse heat transfer method was used in order to evaluate the heat transfer coefficient. First, the heat transfer analysis was conducted for non-vacuum state, without the refrigerant. The evaluated heat transfer coefficient on the radiator surface was 40W/$m^2^{\circ}C$. Second, the heat transfer analysis was conducted for non-vacuum state, with the refrigerant, resulting in the heat transfer coefficient of 95W/$m^2^{\circ}C$. Third, the heat transfer analysis was conducted for vacuum state, with refrigerant. For the third case, the evaluated heat transfer coefficients were 140W/$m^2^{\circ}C$. Third, the heat transfer analysis was conducted for vacuum state, with refrigerant. For the third case, the evaluated heat transfer coefficients were 140W/$m^2^{\circ}C$ for the radiator body, 5W/$m^2^{\circ}C$. Third, the heat transfer analysis was conducted for vacuum state, with refrigerant for the rising position of radiator pipe, 35W/$m^2^{\circ}C$. Third, the heat transfer analysis was conducted for vacuum state, with refrigerant. For the highest position of radiator pipe, and 120W/$m^2^{\circ}C$ for the downturn position of radiator pipe. As a result of inverse heat transfer analysis, it was confirmed that the thermal performance of the current radiator was best in the case of the vacuum state using the refrigerant.
Keywords
Thermo Siphon Type; Inverse Heat Transfer Method; LED Lighting System;
Citations & Related Records
Times Cited By KSCI : 3  (Citation Analysis)
연도 인용수 순위
1 J. W. Park, G. H. Kim, J. H. Kim, W. Y. Cheon, S. B. Song, 2009, Comparison of Thermal Dissipation Properties for LED Lighting System Design, Conf. Kor. Inst. Illum. Electr. Installation Eng.(W. J. Park), Kor. Inst. Illum. Electr. Installation Eng., Muju, Korea, pp. 252-255.
2 K. Nishikawa, Y. Fujita, 1977, Correlation of Nucleate Boiling Heat Transfer based on Bubble Population Density, Int. J. Heat Mass Transfer, Vol. 20, No. 3, pp. 233-245.   DOI
3 J. J Yee, Y. K Kim, S. Y. Choi, 2005, A Performance Evaluation on the Prefabricated Floor Heating System using Thermo Siphon Type Heat Pipe, J. Archit. Inst. Kor., Vol. 21, No. 3, pp. 173-180.   과학기술학회마을   DOI
4 E. C. Jeon, T. J. Je, K. H. Whang, 2010, A Study on Design of High Luminance Hybrid LED Package and Ultra-fine Marching of Optical Pattern, Trans. Mater. Process., Vol. 19, No. 8, pp. 474-479.   DOI
5 Y. T. Cho, 2011, Heat Radiation of LED Light using Cu Plating Engineering Plastic Heat Sink, Kor. Soc. Manuf. Technol. Eng., Vol. 20, No. 1, pp. 81-85.