THERMAL SCIENCE

International Scientific Journal

THERMAL ANALYSIS AND OPTIMIZATION OF L-SHAPE FIN HEAT SINK UNDER NATURAL CONVECTION USING ANOVA AND TAGUCHI

ABSTRACT
Advancement in electronic systems resulted in miniaturization and high-power densities. Therefore, the rate of heat generation in circuit board increased dramatically. To overcome the problem of overheating, numerous heat sink designs are proposed including L-shape fins heat sink. The thermo-fluidic flow behavior and temperature difference are analyzed to get better understanding of heat transfer from the sink to ambient air. Governing equations for the model of conjugate heat transfer in 3-D environment are solved and discretized across the computational domain. Numerous experiments are carried out to validate the numerical results. The effect of fin numbers, height, and heat sink size at three different input power is reported. Furthermore, ANOVA and Taguchi statistical methods are used to predict parameters that affect the heat transfer. The study revealed that fin height affects the heat transfer rate the most, and accounts for 25.3% increase in heat transfer rate. Optimization of the heat sink is carried out to ensure better efficiency of the proposed heat sink. The optimized conditions for the sink are observed to be heat sink size of 90 mm, 9 number of fins, and 33 mm of fin height.
KEYWORDS
PAPER SUBMITTED: 2021-06-12
PAPER REVISED: 2021-08-12
PAPER ACCEPTED: 2021-08-24
PUBLISHED ONLINE: 2021-11-06
DOI REFERENCE: https://doi.org/10.2298/TSCI210612317H
CITATION EXPORT: view in browser or download as text file
THERMAL SCIENCE YEAR 2022, VOLUME 26, ISSUE Issue 2, PAGES [1519 - 1530]
REFERENCES
  1. Huang, C.H. and Tung, P.W., Numerical and experimental studies on an optimum Fin design problem to determine the deformed wavy-shaped heat sinks. International Journal of Thermal Sciences. 2020, 151: p.106282.
  2. Duan, Z., Lv, X., Ma, H., Su, L. and Zhang, M., Analysis of flow characteristics and pressure drop for an impinging plate fin heat sink with elliptic bottom profiles. Applied Sciences. 2020, 10(1): p.225.
  3. Alfellag, M.A., Ahmed, H.E. and Kherbeet, A.S., Numerical simulation of hydrothermal performance of minichannel heat sink using inclined slotted plate-fins and triangular pins. Applied Thermal Engineering. 2020, 164: p.114509.
  4. Abdelmohimen, M.A., Algarni, S., Almutairi, K., Ahmed, G., Irshad, K. and Irfan, S.A., Improving Heat Transfer of Plate-Fin Heat Sinks Using Through Rod Configurations. Journal of Thermal Science and Engineering Applications. 2021, 13(1).
  5. Wiriyasart, S. and Naphon, P., Heat spreading of liquid jet impingement cooling of cold plate heat sink with different fin shapes. Case Studies in Thermal Engineering. 2020, 20: p.100638.
  6. Freegah, B., Hussain, A.A., Falih, A.H. and Towsyfyan, H., CFD analysis of heat transfer enhancement in plate-fin heat sinks with fillet profile: Investigation of new designs. Thermal Science and Engineering Progress. 2020, 17: p.100458.
  7. Sivapragasam, A., Duraisamy, S. and Raman, M., Experimental investigation on thermal performance of plate fin heat sinks with nano PCM. Thermal Science. 2020, 24(1 Part B): p.437-446.
  8. Arshad, A., Ali, H.M., Khushnood, S. and Jabbal, M.,. Experimental investigation of PCM based round pin-fin heat sinks for thermal management of electronics: effect of pin-fin diameter. International Journal of Heat and Mass Transfer. 2018, 117: p.861-872.
  9. Pakrouh, R., Hosseini, M.J., Ranjbar, A.A. and Bahrampoury, R., A numerical method for PCM-based pin fin heat sinks optimization. Energy Conversion and Management. 2015, 103: p.542-552.
  10. Taghilou, M. and Khavasi, E., Thermal behavior of a PCM filled heat sink: The contrast between ambient heat convection and heat thermal storage. Applied Thermal Engineering. 2020, 174: p.115273.
  11. Nair, D.V., Enhancement of free convection from horizontal-base straight-fin heat sink by partial shrouding. Journal of Thermal Science and Engineering Applications. 2020, 12(3): p.031023.
  12. Jones, C.D. and L.F. Smith, Optimum arrangement of rectangular fins on horizontal surfaces for free-convection heat transfer. Journal of Heat Transfer. 1970, 92(1): p. 6-10
  13. Bar-Cohen, A., Fin thickness for an optimized natural convection array of rectangular fins. Journal of Heat Transfer. 1979, 101(3): p. 564-566
  14. Teertstra, P., Yovanovich, M. M., & Culham, J. R., Analytical forced convection modeling of plate fin heat sinks. Journal of Electronics Manufacturing. 2000. 10(04): p. 253-261.
  15. Baskaya, S., Sivrioglu, M., & Ozek, M., Parametric study of natural convection heat transfer from horizontal rectangular fin arrays. International Journal of Thermal Sciences. 2000. 39(8): p. 797-805.
  16. de Lieto Vollaro, A., Grignaffini, S., & Gugliermetti, F, Optimum design of vertical rectangular fin arrays. International journal of thermal sciences. 1999. 38(6): p. 525-529.
  17. Mehrtash, M., & Tari, I., A correlation for natural convection heat transfer from inclined plate-finned heat sinks. Applied Thermal Engineering. 2013. 51(1-2): p. 1067-1075.
  18. Shen, Q., Sun, D., Xu, Y., Jin, T., & Zhao, X., Orientation effects on natural convection heat dissipation of rectangular fin heat sinks mounted on LEDs. International Journal of heat and mass transfer. 2014. 75: p. 462-469.
  19. Naik, S., Probert, S. D., & Wood, C. I., Natural-convection characteristics of a horizontally-based vertical rectangular fin-array in the presence of a shroud. Applied Energy. 1987. 28(4): p. 295-319.
  20. Ledezma, G., & Bejan, A., Heat sinks with sloped plate fins in natural and forced convection. International Journal of heat and mass transfer. 1996. 39(9): p. 1773- 1783.
  21. Elshafei, E. Natural convection heat transfer from a heat sink with hollow/perforated circular pin fins. in 2010 3rd International Conference on Thermal Issues in Emerging Technologies Theory and Applications. 2010. IEEE. p. 185-19322.
  22. Kim, D.K., Thermal optimization of plate-fin heat sinks with fins of variable thickness under natural convection. International journal of heat and mass transfer. 2012, 55(4): p.752-761.
  23. Jang, D., Park, S. J., Yook, S. J., & Lee, K. S., The orientation effect for cylindrical heat sinks with application to LED light bulbs. International Journal of Heat and Mass Transfer. 2014. 71: p. 496-502.
  24. Costa, V. A., & Lopes, A. M., Improved radial heat sink for led lamp cooling. Applied Thermal Engineering. 2014. 70(1): p. 131-138.
  25. Jang, D., Park, S.J., Yook, S.J. and Lee, K.S., The orientation effect for cylindrical heat sinks with application to LED light bulbs. International Journal of Heat and Mass Transfer. 2014, 71: p.496-502.
  26. Li, B., Baik, Y. J., & Byon, C., Enhanced natural convection heat transfer of a chimney-based radial heat sink. Energy conversion and management. 2016. 108: p. 422-428.
  27. Chamkha, A.J., Armaghani, T., Mansour, M.A., Rashad, A.M. and Kargarsharifabad, H., MHD convection of an Al2O3-Cu/water hybrid nanofluid in an inclined porous cavity with internal heat generation/absorption. Iranian Journal of Chemistry and Chemical Engineering (IJCCE). 2021.
  28. Kargarsharifabad, H., Experimental and numerical study of natural convection of Cu-water nanofluid in a cubic enclosure under constant and alternating magnetic fields. International Communications in Heat and Mass Transfer. 2020, 119: p.104957.
  29. Kargarsharifabad, H., Optimization of arrangement of conducting fins and insulated obstacles inside a cavity: the couple of numerical solutions and genetic algorithm methods. Journal of Thermal Analysis and Calorimetry. 2020: p.1-13.
  30. Chamkha, A.J., Mansour, M.A., Rashad, A.M., Kargarsharifabad, H. and Armaghani, T., Magnetohydrodynamic mixed convection and entropy analysis of nanofluid in gamma-shaped porous cavity. Journal of Thermophysics and Heat Transfer. 2020, 34(4): p.836-847.
  31. Bahmani, A. and Kargarsharifabad, H., Laminar natural convection of power‐law fluids over a horizontal heated flat plate. Heat Transfer—Asian Research. 2019, 48(3): p.1044-1066.
  32. Bahmani, A. and Kargarsharifabad, H., Magnetohydrodynamic free convection of non-Newtonian power-law fluids over a uniformly heated horizontal plate. Thermal Science. 2020, 24(2 Part B): p.1323-1334.
  33. Mousavi, H., Darzi, A. A. R., Farhadi, M., & Omidi, M., A novel heat sink design with interrupted, staggered and capped fins. International Journal of Thermal Sciences. 2018. 127: p. 312-320.
  34. Haghighi, S. S., Goshayeshi, H. R., & Safaei, M. R., Natural convection heat transfer enhancement in new designs of plate-fin based heat sinks. International Journal of Heat Mass Transfer. 2018. 125: p. 640-647.
  35. Yalcin, H. G., Baskaya, S., & Sivrioglu, M., Numerical analysis of natural convection heat transfer from rectangular shrouded fin arrays on a horizontal surface. International Communications in Heat Mass Transfer. 2008. 35(3): p. 299-311.
  36. Goshayeshi, H. R., Goodarzi, M., & Dahari, M., Effect of magnetic field on the heat transfer rate of kerosene/Fe2O3 nanofluid in a copper oscillating heat pipe. Experimental Thermal and Fluid Science. 2015. 68: p. 663-668.
  37. Holman, J.P., Experimental methods for engineers. 2001.
  38. Mostafavi, G., M. Ahmadi, and M. Bahrami. Effect of Fin Interruptions on Natural Convection Heat Transfer From a Rectangular Interrupted Single-Wall. in International Electronic Packaging Technical Conference and Exhibition. 2013. American Society of Mechanical Engineers.

© 2024 Society of Thermal Engineers of Serbia. Published by the Vinča Institute of Nuclear Sciences, National Institute of the Republic of Serbia, Belgrade, Serbia. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution-NonCommercial-NoDerivs 4.0 International licence