Skip to main content

Advertisement

Log in

Radiative-Convective Heat Exchange of a Building with the Environment on Exposure to Solar Radiation

  • Published:
Journal of Engineering Physics and Thermophysics Aims and scope

The results of computational investigations of the aerodynamics of a building located in the urban area with a high density of buildings and of its heat exchange with the environment are presented. A three-dimensional numerical model of nonstationary processes of transfer of momentum and heat on interaction of the building with the wind under the conditions of diurnal variations of the solar radiation intensity and air temperature has been constructed. The model allows one to estimate the basic parameters of the heat exchange of the building with the environment under different seasonal conditions.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Similar content being viewed by others

References

  1. Thermal insulation of buildings, in: State Building Norms of Ukraine, DN V.2.6-31:2016, Kiev (2016).

  2. T. Defraeye, B. Blocken, and J. Carmeliet, Convective heat transfer coefficients for exterior building surfaces: Existing correlations and CFD modeling, Energy Convers. Manage., No. 52(1), 512–522 (2011).

  3. M. G. Emmel and N. Mendes, Analysis of wind-driven flow and external convective heat transfer coefficients for the BESTEST model building, in: Proc. Ninth Int. IBPSA Conf., August 15–18, 2005, Montréal, Canada (2015).

  4. A. Monin and A. Yaglom, Statistical Hydromechanics [in Russian], Fizmatlit, Moscow (1965).

    Google Scholar 

  5. J. O. Smith, Determination of the Convective Heat Transfer Coefficients from the Surfaces of Buildings within Urban Street Canyons, PhD Thesis, Bath Depart, Waterloo Mech. Eng. Univ. (2010).

  6. C. Alinot and C. Masson, Aerodynamic simulations of wind turbines operating in atmospheric boundary layer with various thermal stratifications, in: Proc. 2002 ASME Wind Energy Symposium, January, 2002, Reno (2002), pp. 206–215.

  7. C. Alinot and C. Masson, Aerodynamic of wind turbines in thermally stratified turbulent atmospheric boundary layer; www.researchgate.net/publication/228833288.

  8. A. Russell, Computational Fluid Dynamics Modeling of Atmospheric Flow Applied to Wind Energy Research, MSc Thesis, Boise State Mech. Eng. Univ. (2009).

  9. J. E. Pieterse, CFD Investigation of the Atmospheric Boundary Layer under Different Thermal Stability Conditions, MSc Thesis, Faculty Eng., Stellenbosch Univ. (2013).

  10. V. Masson, A physically-based scheme for the urban energy budget in atmospheric models. Boundary-Layer Meteorology, No. 94, 357–397 (2000).

  11. S. A. Isaev, P. A. Baranov, Yu. V. Zhukova, A. A. Tereshkin, and A. E. Usachov, Simulation of the wind effect on an ensemble of high-rise buildings by means of multiblock computational technologies, J. Eng Phys. Thermophys., 87, No. 1, 112–123 (2014).

    Article  Google Scholar 

  12. Franke Jorg, Hellsten Antti, Schlunzen Heinke, and Carissimo Bertrand, Best practice guideline for the CFD simulation of flows in the urban environment, in: COST Action 732 ″Quality Assurance and Improvement of Microscale Meteorological Models; www.cost.esf.org.

  13. B. I. Basok, B. V. Davydenko, and V. G. Novikov, Numerical simulation of wind streams in the zone of city development, Vozob. Énerg., 37, No. 2, 46–59 (2014).

    Google Scholar 

  14. D. Cabezon, J. Sanz, and J. Van Beeck, Sensitivity analysis on turbulence model for the ABL in complex terrain; http://proceedings.ewea.org/ewec2007/allfiles2/134_Ewec2007fullpaper.pdf.

  15. T. G. Belyaeva, Experimental approbation of a measuring complex at the object of ground heat accumulator with vertical heat exchangers of borehole type, Prom. Teplotekh., 35, No. 4, 45–50 (2013).

    Google Scholar 

  16. B. I. Basok, B. V. Davydenko, and S. M. Goncharuk, Characteristic features of heat supply to an administrative buildings during the heating period, Keram.: Nauka Zhizn′, No. 4(14), 59–68 (2011).

  17. B. I. Basok, B. V. Davydenko, S. M. Goncharuk, and M. P. Novitskaya, Investigation of heat losses through external wall construction with an extra layer of warmth-keeping jacket, Prom. Teplotekh., 35, No. 7, 260–268 (2013).

    Google Scholar 

  18. V. K. Morgunov, Principles of Meteorology, Climatology. Meteorological Devices and Observation Methods [in Russian], Feniks, Novosibirsk, Rostov-on-Don (2005).

  19. J. A. Clarke, Energy Simulation in Building Design, Butterwoth-Heinemann Linnacre House, Oxford (2001).

    Google Scholar 

  20. J. A. Duffie and W. A. Beckman, Solar Engineering of Thermal Processes, John Wiley & Sons, New Jersey, (2013), p. 910.

    Book  Google Scholar 

  21. Building climatology, in: State Standard of Ukraine, DSTU-N B V1.1-27:2010, Kiev (2010).

Download references

Author information

Authors and Affiliations

Authors

Corresponding author

Correspondence to T. G. Belyaeva.

Additional information

Translated from Inzhenerno-Fizicheskii Zhurnal, Vol. 93, No. 1, pp. 48–57, January–February, 2020.

Rights and permissions

Reprints and permissions

About this article

Check for updates. Verify currency and authenticity via CrossMark

Cite this article

Basok, B.I., Novikov, V.G., Davydenko, B.V. et al. Radiative-Convective Heat Exchange of a Building with the Environment on Exposure to Solar Radiation. J Eng Phys Thermophy 93, 45–53 (2020). https://doi.org/10.1007/s10891-020-02089-5

Download citation

  • Received:

  • Published:

  • Issue Date:

  • DOI: https://doi.org/10.1007/s10891-020-02089-5

Keywords

Navigation