Vehicle cabin roof thermal shield using phase change material

Authors

  • Vu Lan Nguyen Ho Chi Minh City University of Technology and Education, Vietnam

Corressponding author's email:

lannv@hcmute.edu.vn

Keywords:

Cool roof, Solar roof, Vehicle roof

Abstract

This paper presents amelioration for vehicle roofing design to improve its total thermal resistance. The key concept is to utilize phase change material properties to trap the heat from solar radiation and then release it back to the environment by means of the naturally favored external convection when the vehicle is running or during the nocturnal cycle. Experimental and numerical analyses have been conducted to compare the thermal performance of the new design and the normal roofing with different colors. A general mathematic equation system has also been derived for the thermal process through of the roof. Results show that the new design could effectively reduce the downward heat flow from the roof into the cabin. As a consequence, the cooling load of the cabin is significantly lower.

Downloads: 0

Download data is not yet available.

References

H. Suehrcke, E.L. Peterson and N. Selby, Effect of roof solar reflectance on the building heat gain in a hot climate. Energy and Buildings 40, 2224–2235 (2008).

Information on http://www.solarelectricalvehicles.com/

Information on http://en.wikipedia.org/wiki/Solar_vehicle

Information on http://www.thinksolarenergy.net/121/solar-power-in-cars/solar-energy- solar- systemc

Han, J, L Lu and H Yang, Thermal behavior of a novel type see-through glazing sys- tem with integrated PV cells, Building and Environment, Vol.44, No.10, pp.2129-2136 (2009).

Yaping Cui, Jingchao Xie, Jiaping Liu, Song Pan, Review of Phase Change Materials Integrated in Building Walls for Energy Saving, Procedia Engineering 121, 763 – 770 (2015).

A. Sharma, V.V. Tyagi, C.R. Chen, and D. Buddhi, Review on Thermal Energy Storage with Phase Change Materials and Applications, Renewable and Sustainable Energy Re- views, 13, 318–345 (2009).

B. Frank, Phase change material for space heating and cooling, Sustainable Energy Cen- ter: University of South Australia (2002).

A. Athienitis and Y. Chen, The effect of solar radiation on dynamic thermal performance of floor heating systems, Solar Energy 69, 229-237 (2000).

K.P. Lin, Y.P. Zhang, X. Xu, H.F. Di, R. Yang and P.H. Qin, Modeling and simulation of under-floor electric heating system with shape-stabilized PCM plates, Building and Environment 39, 1427-1434 (2004).

K. Nagano, T. Mochida, K. Iwata, H. Hiroyoshi, R. Domanski and M. Rebow, Develop- ment of new PCM for TES of the cooling system, Terrastock. In: Benner M, Hahne EWP Eds., 8th International Conference on Thermal Energy Storage, pp 345-350 (2000).

Information on http://www.engineersedge.com/properties of metals.htm

David E. Stier, U.S. Patent number: 6286754 (2001).

G.N. Tiwari, in: Solar Energy - Fundamentals, Model, Modelling and Applications, Narosa Publishing House, Inida (2002).

N. Ito, K. Kimura and J. Oka: ASHRAE Transactions (1972).

H.P. Garg, in: Treatise on solar energy, Fundamentals of Solar Energy, Vol.1, Chapter 3, Chichester: Wiley Publisher (1982).

C. Chen, H.F. Guo, Y.N. Liu, H.L. Yue and C.D. Wang, A new kind of Phase change material for energy-storing wallboard, Energy and Buildings, 40 (5), 882-890 (2008).

Downloads

Published

25-01-2016

How to Cite

[1]
V. L. Nguyen, “Vehicle cabin roof thermal shield using phase change material”, JTE, vol. 11, no. Special Issue 01, pp. 67–76, Jan. 2016.