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Quasi-steady states in natural displacement ventilation driven by periodic gusting of wind

Published online by Cambridge University Press:  18 July 2012

Richard W. Mott
Affiliation:
BP Institute, Madingley Rise, Cambridge CB3 0EZ, UK
Andrew W. Woods*
Affiliation:
BP Institute, Madingley Rise, Cambridge CB3 0EZ, UK
*
Email address for correspondence: andy@bpi.cam.ac.uk

Abstract

We investigate the natural displacement ventilation of a space connected to a body of warm fluid through high- and low-level vents. The space is subject to discrete periodic gusts of wind entering at high level from a cold exterior. The cold exterior air entering the space produces buoyancy differences between the space and the body of warm fluid, driving a ventilation flow. Initially we examine the case of a series of identical gusts of wind modelled as turbulent buoyant thermals. New laboratory experiments show that an approximately two-layer stratification is established and the height of the interface is quasi-steady if the period between thermals is much less than the draining time of the space but longer than the fall time of individual thermals. Experiments also show that the interface height depends on the average buoyancy flux associated with the wind gusts, the time between thermals as well as the geometric properties of the vents. This contrasts with the case of a continuous source of buoyancy where the interface height depends only on the geometric properties of the vents and is independent of the buoyancy flux. We develop a quasi-steady two-layer model of the flow based on the classical theory of turbulent thermals and show that it is consistent with our new experimental data. We generalize the model to explore the sensitivity of the results to temporal variations in the size of thermals. We then extend the model to explore the effects of longer interval times between successive thermals and find a two-layer stratification still develops but that the interface height now varies cyclically in time. We then discuss the implications of these results for the ventilation of a shopping mall subject to gusts of wind.

Type
Papers
Copyright
Copyright © Cambridge University Press 2012

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References

1. Awbi, H. 2003 Ventilation of Buildings, pp. 1507. Spon Press.Google Scholar
2. Baines, W. D. 1983 A technique for the direct measurement of volume flux of a plume. J. Fluid Mech. 132, 247256.CrossRefGoogle Scholar
3. Bolster, D. & Linden, P. F. 2007 Contaminants in ventilated filling boxes. J. Fluid Mech. 591, 97116.CrossRefGoogle Scholar
4. Bower, D. J., Caulfield, C. P., Fitzgerald, S. D. & Woods, A. W. 2008 Transient ventilation dynamics following a change in strength of a point source of heat. J. Fluid Mech. 614, 1537.CrossRefGoogle Scholar
5. Economidou, M & Hunt, G. R. 2010 Transient flows in enclosures: a generalised approach for modelling the effects of geometry, heat gains and wind. Build. Environ. 45, 26072619.CrossRefGoogle Scholar
6. Fitzgerald, S. D. & Woods, A. W. 2007 Transient natural ventilation of a room with a distributed heat source. J. Fluid Mech. 591, 2142.CrossRefGoogle Scholar
7. Germeles, A. E. 1975 Forced plumes and mixing of liquids in tanks. J. Fluid Mech. 71, 601623.CrossRefGoogle Scholar
8. Hunt, G. R. & Kaye, N. E. 2006 Pollutant flushing with natural displacement ventilation. Build. Environ. 41, 11901197.CrossRefGoogle Scholar
9. Hunt, G. R & Linden, P. F. 2001 Steady-state flows in an enclosure ventilated by buoyancy forces assisted by wind. J. Fluid Mech. 426, 355386.CrossRefGoogle Scholar
10. Hunt, G. R & Linden, P. F. 2005 Displacement and mixing ventilation driven by opposing wind and buoyancy. J. Fluid Mech. 527, 2755.CrossRefGoogle Scholar
11. Jiang, Y., Alexander, D., Jenkins, H., Arthur, R. & Chen, Q. 2003 Natural ventilation in buildings: measurement in a wind tunnel and numerical simulation with large-eddy simulation. J. Wind Engng Ind. Aerodyn. 91, 331353.CrossRefGoogle Scholar
12. Kaye, N. B. & Hunt, G. R. 2004 Time dependent flows in an emptying filling box. J. Fluid Mech. 520, 135156.CrossRefGoogle Scholar
13. Kuesters, A & Woods, A. W. 2011 The formation and evolution of stratification during transient mixing ventilation. J. Fluid Mech. 670, 6684.CrossRefGoogle Scholar
14. Li, Y. & Delsante, A. 2001 Natural ventilation by combined wind and buoyancy forces. Build. Environ. 36, 5971.CrossRefGoogle Scholar
15. Linden, P. F., Lane-Serff, G. F. & Smeed, D. A. 1990 Emptying filling boxes: the fluid mechanics of natural ventilation. J. Fluid Mech. 212, 309335.CrossRefGoogle Scholar
16. Lishman, B. & Woods, A. W. 2008 On transitions in natural ventilation flow driven by changes in the wind. Build. Environ. 44 (4), 666673.CrossRefGoogle Scholar
17. Morton, B. R., Taylor, G. I. & Turner, J. S. 1956 Turbulent turulent gravitational convection from maintained and instantaneous sources. Proc. R. Soc. Lond. 234, 1234.Google Scholar
18. Mott, R. W. & Woods, A. W. 2009 On the mixing of a confined stratified fluid by a turbulent buoyant plume. J. Fluid Mech. 623, 149165.CrossRefGoogle Scholar
19. Mott, R. W. & Woods, A. W. 2011 Natural ventilation driven by periodic gusting of wind. J. Fluid Mech. 679, 5876.CrossRefGoogle Scholar
20. Turner, J. S. 1979 Buoyancy Effects in Fluids. Cambridge University Press.Google Scholar
21. Woods, A. W., Caulfield, C. P. & Phillips, J. C. 2003 Blocked natural ventilation: the effect of a source mass flux. J. Fluid Mech. 495, 119133.CrossRefGoogle Scholar