Cover
Vol. 14 No. 2 (2014)

Published: June 30, 2014

Pages: 23-32

Original Article

Application of Earth Tube Heat Exchanger and Solar Chimney for Natural Cooling System in Basrah City

Abstract

Solar chimney (SC) together with earth to air heat exchanger (EAHE) is being employed as a low-energy consuming technique to remove undesirable interior heat from a building in the hot seasons. A numerical program "FLUENT 6.3 code" of an earth to air heat exchanger (EAHE) is studied for predicting the outlet air temperature and cooling potential of these devices in Basrah climate. Theoretical analyses have been conducted in order to investigate the ventilation in a solar chimney. The investigation into the viability of Low Energy Earth Pipe Cooling Technology in providing thermal comfort in Basrah. The demand for air-conditioning in buildings in Basrah affects the country escalating energy consumption. Therefore, this investigation was intended to seek for an alternative passive cooling to air-conditioning. The passive technology, where the ground was used as a heat sink to produce cooler air, has not been investigated systematically in hot and humid countries. A sub-soil temperature model adapted for the specific conditions in Basrah is presented and its output compared with CFD modeling. The results have shown that the potential of Earth Pipe is providing lower output temperature of air inlet to the room. We found that the resulting temperature at the buried pipe outlet decreases with increasing pipe length, decreasing pipe diameter, decreasing mass flow rate of flowing air in the pipe and increasing depths up to 4m.

References

  1. Labs K. In: Cook J, editor. Passive cooling. Cambridge Massachusetts, London, England: MIT Press; 1989.
  2. Mihalakakou G, Santamouris M, Asimakopoulos D. Tselepidaki. Parametric prediction of the buried pipes cooling potential for passive cooling applications. Solar Energy 1995:55(3): 163-73.
  3. Santamouris M., Mihalakakou G., Balaras C. A., Argiriou A., Asimakopoulos D. and Vallindras M. (1995) Use of Buried Pipes for Energy Conservation in Cooling of Agricultural Greenhouses. Solar Energy 55 (2): 111-124.
  4. Ghosal M. K. and Tiwari G. N. (2006) Modelling and parametric studies for thermal performance of an earth to air heat exchanger integrated with a greenhouse. Energy Conversion and Management 47 (2006) 1779-1798.
  5. Hanby V.I., Loveday D.L. and Al-Ajmi L. (2005) The optimal design for a ground cooling tube in a hot, arid climate. Building Service Eng. Res. Technol. 26,1 pp 1-10.
  6. Krarti M., Lopez-Alonzo C., Claridge D. E., Kreider J. F. (1995). Analytical model to predict annual soil surface temperature variation. Journal of Solar Energy Engineering
  7. pp 91-99.
  8. Vikas Bansal, Rohit Misra, Ghanshyam Das Agrawal, Jyotirmay Mathur , Performance analysis of earth–pipe–air heat exchanger for summer cooling . Energy and Buildings 42 (2010) 645–648.
  9. Kusuda T. and Achenbach P.R. (1965) Earth Temperature and Thermal Diffusivity at Selected Stations in United States. ASHRAE Transactions, 71, Part 1.
  10. Ong KS. A mathematical model of a solar chimney. Renewable Energy 2003;28:1047e60.
  11. M. Maerefat, AP. Haghighi, passive cooling of building by using integrated earth to air heat exchanger and solar chimney, Renewable Energy 35, 2010, pp. 2316-2324.
  12. Mathur J, Mathur S, Anupma. Summer-performance of inclined roof solar chimney for natural ventilation. Energy and Buildings 2006;38:1156e63.