international conference on information and communication technologies in agriculture,
Volos, Greece, 20–23 Sept 2006
Rico-Garcia E, Reyes-Araiza JL, Herrera-Ruiz G (2006) Simulations of the climate in two
different greenhouses. Acta Horticulturae 719:325–332
Rico-Garcia E, Lopez-Cruz IL, Herrera-Ruiz G, Soto-Zarazua GM, Castaneda-Miranda R (2008)
Effect of temperature on greenhouse natural ventilation under hot conditions: computational
fluid dynamics simulations. J Appl Sci 8:4543–4551
Ríco-García E (2008) Climate modeling greenhouse: natural ventilation. PhD Tesis, Queretaro
State University, México
Rico-García E, Soto-Zarazúa GM, Alatorre-Jácome O, De la Torre-Gea GA, Gómez-Melendez
DJ (2011) Aerodynamic study of greenhouses using computational fluid dynamics. J Appl Sci
6(28):6541–6547
Roberts RA, Cui J (2010) Selection of the simulation domain of turbulent flow around and airfoil.
Eng Appl Comput Fluid Mech 4:441–449
Rouboa A, Monteiro E (2007) Computational fluid dynamics analysis of greenhouse microclimates by heated underground tubes. J Mech Sci Technol 12(21):2196–2204
Roy JC, Boulard T (2005) CFD prediction of the natural ventilation in a tunnel-type greenhouse:
influence of wind direction and sensibility to turbulence models. Acta Horticulturae 691:457–464
Roy JC, Vidal C, Fargues J, Boulard T (2008) CFD based determination of temperature and
humidity at leaf surface. Comput Electron Agric 61:201–212
Sapounas AA, Nikita-Martzopoulou C, Bartzanas T, Kittas C (2007) Aspects of CFD modeling of
fan and pad evaporative cooling system in a greenhouses. Int J Vent 6:379–388
Sase S (2006) Air movement and climate uniformity in ventilated greenhouses. Acta
Horticulturae 719:313–324
Stavrakakis GM, Zervas PL, Sarimveis H, Markatos NC (2010) Development of a computational
tool to quantify architectural-design effects on thermal comfort in naturally ventilated rural
houses. Build Environ 45:65–80
Sun Z, Wang S (2010) A CFD-based test method for control of indoor environment and space
ventilation. Build Environ 45:1441–1447
Tablada A, Blocken B, Carmeliet J, De Troyer F, Verschure H (2005) The influence of courtyard
geometry on air flow and thermal comfort: CFD and thermal comfort simulations. In:
Proceedings of 22nd conference on passive and low energy architecture, vol 1, pp 75–80
Teitel M, Tanny J, Ben-Yakir D, Barak M (2005) Airflow patterns through roof openings of a
naturally ventilated greenhouse and their effect on insect penetration. Biosyst Eng 92:341–353
Teitel M, Ziskind G, Liran O, Dubovsky V, Letan R (2008) Effect of wind direction on greenhouse
ventilation rate, airflow patterns and temperature distributions. Biosyst Eng 101:351–369
Teittel M (2010) Using computational fluid dynamics simulations to determine pressure drops on
woven screens. Biosyst Eng 105:172–179
Tong G, Christopher DM, Li B (2009) Numerical modelling of temperature variations in a
chinese solar greenhouse. Comput Electron Agric 68:129–139
von Elsner B, Briassoulis D, Waaijenberg D, Mistriotis A, von Zabeltitz C, Gratraud J, Russo G,
Suay-Cortes R (2000) Review of structural and functional characteristics of greenhouses in
European Union countries, part II: typical designs. J Agric Eng Res 75(2):111–126
Van Hoff T, Blocken B (2010) Coupled urban wind flow and indoor natural ventilation modelling
on a high-resolution grid: a case study for the amsterdam arena stadium. Environ Model Softw
25:51–65
Vera S, Fazio P, Rao J (2010a) Interzonal air and moisture transport through large horizontal
openings in a full-scale two-story test-hut: part 2—CFD study. Build Environ 45:622–631
Vera S, Fazio P, Rao J (2010b) Interzonal air and moisture transport through large horizontal openings
in a full-scale two-story test-hut: part 1—experimental study. Build Environ 45:1192–1201
Wan-Teng E, Kumar P, Samyudia Y (2011) Computational fluid dynamics of mixing in aerated
bioreactors In: 2010 international conference on biology, environment and chemistry
IPCBEE, vol 1 Ó IACSIT Press, Singapore
Yan X, Chen XB, Bergstrom DJ (2011) Modeling of the flow within scaffolds in perfusion
bioreactors. Am J Biomed Eng 1(2):72–77. doi: 10.5923/j.ajbe.20110102.13
362
G. De la Torre-Gea et al.
Volos, Greece, 20–23 Sept 2006
Rico-Garcia E, Reyes-Araiza JL, Herrera-Ruiz G (2006) Simulations of the climate in two
different greenhouses. Acta Horticulturae 719:325–332
Rico-Garcia E, Lopez-Cruz IL, Herrera-Ruiz G, Soto-Zarazua GM, Castaneda-Miranda R (2008)
Effect of temperature on greenhouse natural ventilation under hot conditions: computational
fluid dynamics simulations. J Appl Sci 8:4543–4551
Ríco-García E (2008) Climate modeling greenhouse: natural ventilation. PhD Tesis, Queretaro
State University, México
Rico-García E, Soto-Zarazúa GM, Alatorre-Jácome O, De la Torre-Gea GA, Gómez-Melendez
DJ (2011) Aerodynamic study of greenhouses using computational fluid dynamics. J Appl Sci
6(28):6541–6547
Roberts RA, Cui J (2010) Selection of the simulation domain of turbulent flow around and airfoil.
Eng Appl Comput Fluid Mech 4:441–449
Rouboa A, Monteiro E (2007) Computational fluid dynamics analysis of greenhouse microclimates by heated underground tubes. J Mech Sci Technol 12(21):2196–2204
Roy JC, Boulard T (2005) CFD prediction of the natural ventilation in a tunnel-type greenhouse:
influence of wind direction and sensibility to turbulence models. Acta Horticulturae 691:457–464
Roy JC, Vidal C, Fargues J, Boulard T (2008) CFD based determination of temperature and
humidity at leaf surface. Comput Electron Agric 61:201–212
Sapounas AA, Nikita-Martzopoulou C, Bartzanas T, Kittas C (2007) Aspects of CFD modeling of
fan and pad evaporative cooling system in a greenhouses. Int J Vent 6:379–388
Sase S (2006) Air movement and climate uniformity in ventilated greenhouses. Acta
Horticulturae 719:313–324
Stavrakakis GM, Zervas PL, Sarimveis H, Markatos NC (2010) Development of a computational
tool to quantify architectural-design effects on thermal comfort in naturally ventilated rural
houses. Build Environ 45:65–80
Sun Z, Wang S (2010) A CFD-based test method for control of indoor environment and space
ventilation. Build Environ 45:1441–1447
Tablada A, Blocken B, Carmeliet J, De Troyer F, Verschure H (2005) The influence of courtyard
geometry on air flow and thermal comfort: CFD and thermal comfort simulations. In:
Proceedings of 22nd conference on passive and low energy architecture, vol 1, pp 75–80
Teitel M, Tanny J, Ben-Yakir D, Barak M (2005) Airflow patterns through roof openings of a
naturally ventilated greenhouse and their effect on insect penetration. Biosyst Eng 92:341–353
Teitel M, Ziskind G, Liran O, Dubovsky V, Letan R (2008) Effect of wind direction on greenhouse
ventilation rate, airflow patterns and temperature distributions. Biosyst Eng 101:351–369
Teittel M (2010) Using computational fluid dynamics simulations to determine pressure drops on
woven screens. Biosyst Eng 105:172–179
Tong G, Christopher DM, Li B (2009) Numerical modelling of temperature variations in a
chinese solar greenhouse. Comput Electron Agric 68:129–139
von Elsner B, Briassoulis D, Waaijenberg D, Mistriotis A, von Zabeltitz C, Gratraud J, Russo G,
Suay-Cortes R (2000) Review of structural and functional characteristics of greenhouses in
European Union countries, part II: typical designs. J Agric Eng Res 75(2):111–126
Van Hoff T, Blocken B (2010) Coupled urban wind flow and indoor natural ventilation modelling
on a high-resolution grid: a case study for the amsterdam arena stadium. Environ Model Softw
25:51–65
Vera S, Fazio P, Rao J (2010a) Interzonal air and moisture transport through large horizontal
openings in a full-scale two-story test-hut: part 2—CFD study. Build Environ 45:622–631
Vera S, Fazio P, Rao J (2010b) Interzonal air and moisture transport through large horizontal openings
in a full-scale two-story test-hut: part 1—experimental study. Build Environ 45:1192–1201
Wan-Teng E, Kumar P, Samyudia Y (2011) Computational fluid dynamics of mixing in aerated
bioreactors In: 2010 international conference on biology, environment and chemistry
IPCBEE, vol 1 Ó IACSIT Press, Singapore
Yan X, Chen XB, Bergstrom DJ (2011) Modeling of the flow within scaffolds in perfusion
bioreactors. Am J Biomed Eng 1(2):72–77. doi: 10.5923/j.ajbe.20110102.13
362
G. De la Torre-Gea et al.
