Vol. 20 No. 1 (2017) Cover Image
Vol. 20 No. 1 (2017)

Published: January 31, 2017

Pages: 235-249

Articles

Thermal Performance Enhancement of Phase Change Materials (PCMs) by Using Metal Foams

Abstract

An investigation of thermal conductivity enhancement, melting and solidification processes of Phase Change Materials (PCMs) by using metal foams has been carried out. Two models have been used in the experiments, model I for measuring the effective thermal conductivity of metal foam embedded in paraffin wax, and model II used as a small scale thermal energy storage device with and without metal foam for investigating melting and solidification processes of the PCM under different cooling conditions (natural and forced convection). The theoretical investigation involves analytical solution of two models, the semi-infinite medium for calculating the thermal conductivity, and the thermal energy storage system TESS has been analyzed including several assumptions for determining the convective heat transfer coefficient and the factors that controlling forced convection and solidification of the PCM. The experimental results show that the thermal conductivity of wax with 10 PPI metal foam increased by (37-39) times that of pure wax. Effects of pore density (10 and 40 PPI), metal foam, and mass flow rate on solidification process have been studied and the effects of pore density and metal foam on the melting process have also been investigated. The present experimental results have been compared with the available previous studies and gave a good agreement.

References

  1. Lafdi K., Mesalhy O., Shaikh S. (2007), ‘’Experimental study on the influence of foam porosity and pore size on the melting of phase change materials’’, J. Appl. Phy.102–083549.
  2. Zhong Y., Guo Q., Li S., Shi J., and Liu L. (2010), ‘’Heat transfer enhancement of paraffin wax using graphite foam for thermal energy storage’’, Solar Energy Materials and Solar Cells 94 P.P. 1011-1014.
  3. Zhao C.Y., Lu W., Tian Y. (2010), ‘’Heat transfer enhancement for thermal energy storage using metal foams embedded within phase change materials’’, Solar Energy 84 (8) P.P. 1402–1412.
  4. Pathik Himanshu Vadwala (2011) ‘’ Thermal energy storage in copper foams filled with paraffin wax’’ University of Toronto.
  5. Tian Y., C.Y. Zhao, ‘’A numerical investigation of heat transfer in phase change materials (PCMs) embedded in porous metals’’, Energy 36 (9) (2011) P.P. 5539–5546.
  6. Li W.Q., Qu Z.G., He Y.L., and Tao W.Q. (2012), ‘’Experimental and numerical studies on melting phase change heat transfer in open-cell metallic foams filled with paraffin’’, Applied Thermal Engineering 37 P.P. 1–9.
  7. Y. Cengel (2007),“Heat and Mass Transfer” - A practical approach, 3rd ed. Mc Graw Hill, P. 901.
  8. Clamidi VV and Mahajan RL(2000), ‘’Forced convection in high porosity metal foams’’, ASME Transactions Journal of Heat Transfer 65 P.P. 122-557.
  9. K. Boomsma (2001), “On the effective thermal conductivity of a three-dimensionally structured fluid-saturated metal foam,” International Journal of Heat and Mass Transfer Vol. 44 No. 4: P.P. 827-836.
  10. Kayes W.M. and Crawford M.E. (1987), ‘’Convective heat and mass transfer’’ Mc Graw-Hill (1993).
  11. Streeter Victor Lyle, ‘’Fluid mechanics’’ Mc Graw-Hill.