Browse > Article
http://dx.doi.org/10.5916/jkosme.2014.38.10.1200

Heat transfer enhancement of nanofluids in a pulsating heat pipe for heat dissipation of LED lighting  

Kim, Hyoung-Tak (Department of Energy Plant Engineering, Graduate School, Korea Maritime and Ocean University)
Bang, Kwang-Hyun (Division of Mechanical and Energy Systems Engineering, Korea Maritime and Ocean University)
Abstract
The effect of nanofluids on the heat transfer performance of a pulsating heat pipe has been experimentally investigated. Water-based diamond nanofluid and aluminium oxide ($Al_2O_3$) nanofluid were tested in the concentration range of 0.5-5%. The pulsating heat pipe was constructed using clear Pyrex tubes of 1.85 mm in inner diameter in order to visualize the pulsating action. The total number of turns was eight each for heated and cooled parts. The supply temperatures of heating water and cooling water were fixed at $80^{\circ}C$ and $25^{\circ}C$ respectively. The liquid charging ratio of the nanofluid was 50-70%. The test results showed that the case of 5% concentration of diamond nanofluid showed 18% increase in heat transfer rate compared to pure water. The case of 0.5% concentration of $Al_2O_3$ nanofluid showed 24% increase in heat transfer rate compared to pure water. But the increase of $Al_2O_3$ nanofluid concentration up to 3% did not show further enhancement in heat transfer. It is also observed that the deposited nanoparticles on the tube wall played a major role in enhanced evaporation of working fluid and this could be the reason for the enhancement of heat transfer by a nanofluid, not the enhanced thermal conductivity of the nanofluid.
Keywords
Light emitting diode; Pulsating heat pipe; Nanofluid; Heat dissipation;
Citations & Related Records
Times Cited By KSCI : 2  (Citation Analysis)
연도 인용수 순위
1 H. T. Kim, A Study on Cooling of Flameproof LED Lightings using Pulsating Heat Pipes, M.S. Thesis, Korea Maritime University, 2012.
2 H. T. Kim, H. K. Park, and K. H. Bang, "Heat dissipation of sealed LED light fixtures using pulsating heat pipe technology," Journal of the Korea Society of Marine Engineering, vol. 36, no. 1, pp. 64-71, 2012.   과학기술학회마을   DOI   ScienceOn
3 S. K. Das, S. U. S. Choi, W. Yu, and T. Pradeep, Nanofluids Science and Technology, Wiley, 2008.
4 H. B. Ma, C. Wilson, B. Borgmeyer, K. Park, Q. Yu , S. U. S. Choi, and M. Tirumala, "Effect of nanofluid on the heat transport capability in an oscillating heat pipe," Applied Physics Letter, vol. 88, no. 143116, pp. 1-3, 2006.
5 J. G. Collier and J. R. Thome, Convective Boiling and Condensation, 3rd ed., Oxford, 1994.
6 M. H. Shin, "State of the art on a large output of power LED packaging," Physics & High Technology, Korea Physical Society, vol. 17, no. 1, pp. 16-21, 2008.
7 H. Akachi, "Structure of a Heat Pipe," U.S. Patent no. 4921041, 1990.
8 J. S. Kim, N. H. Bui, J. W. Kim, J. H. Kim, and H. S. Jung, "Flow visualization of oscillation characteristics of liquid and vapor flow in the oscillation capillary tube heat pipe," International Journal of Korean Society of Mechanical Engineers, vol. 17, no. 10, pp. 1507-1519, 2003.   과학기술학회마을
9 H. Yang, S. Khandekar, and M. Groll, "Operational limit of closed loop pulsating heat pipes," Applied Thermal Engineering, vol. 28, pp. 49-59, 2008.   DOI   ScienceOn