Citation: Miguel Mora-Pérez, Ignacio Guillen-Guillamón, Petra Amparo López-Jiménez. A CFD study for evaluating the effects of natural ventilation on indoor comfort conditions[J]. AIMS Environmental Science, 2017, 4(2): 289-309. doi: 10.3934/environsci.2017.2.289
[1] | Kudryashova A, Genkov A, Mo T (2015) Certification schemes for sustainable buildings: assessment of BREEAM, LEED and LBC from a strategic sustainable development perspective. Blekindge Institute of Technology, Karlskrona. |
[2] | Taleb HM (2015) Natural ventilation as energy efficient solution for achieving low-energy houses in Dubai. Energy Build 99: 284-291. doi: 10.1016/j.enbuild.2015.04.019 |
[3] | U.E. Environmental Protection Agency (EPA), Green building basic information, 2014. Available from: http://www.epa.gov/greenbuilding/pubs/about.htm. |
[4] | Luo ZW, Zhao JN, Gao J, et al. (2007). Estimating natural-ventilation potential considering both thermal comfort and IAQ issues. Build Environ 42: 2289-2298. doi: 10.1016/j.buildenv.2006.04.024 |
[5] | Hitchin ER, Wilson CB (1967) A review of experimental techniques for the investigation of natural ventilation in buildings. Build Sci 2: 59-82. doi: 10.1016/0007-3628(67)90007-2 |
[6] | Chen Q (2009) Ventilation performance prediction for buildings: A method overview and recent applications. Build Environ 44: 848-858. doi: 10.1016/j.buildenv.2008.05.025 |
[7] | Coakley D, Raftery P, Keane M (2014) A review of methods to match building energy simulation models to measured data. Renew Sustain Energy Rev 37: 123-141. doi: 10.1016/j.rser.2014.05.007 |
[8] | Zhu YX, Luo MH, Ouyang Q, et al. (2015) Dynamic characteristics and comfort assessment of airflows in indoor environments: A review. Build Environ 91: 5-14. doi: 10.1016/j.buildenv.2015.03.032 |
[9] | Etheridge D (2015) A perspective on fifty years of natural ventilation research. Build Environ 91: 51-60. doi: 10.1016/j.buildenv.2015.02.033 |
[10] | Wang H, Lin H, Ng VCY, et al. (2015) Failure of natural ventilation strategy in a sustainable house in China. Int J Low-Carbon Tech 10: 216-228. doi: 10.1093/ijlct/ctt035 |
[11] | Moosavi L, Mahyuddin N, Abghafar N, et al. (2014) Thermal performance of atria: an overview of natural ventilation effective designs. Renew Sustain Energy Rev 34: 654-670. doi: 10.1016/j.rser.2014.02.035 |
[12] | Foucquier A, Robert S, Suard F, et al. (2013) State of the art in building modelling and energy performances prediction: A review. Renew Sustain Energy Rev 23: 271-288. |
[13] | Mora-Pérez M, Guillén-Guillamón I, López-Jiménez PA (2015) Computational analysis of wind interactions for comparing different buildings sites in terms of natural ventilation. Adv Eng Softw 88: 73-82. doi: 10.1016/j.advengsoft.2015.06.003 |
[14] | Sun YM, Zhang WY, Zhang CY (2014) Preliminary study on natural ventilation for hospital building in hot and humid regions. 30th International Plea Conference. CEPT University, Ahmedabad. |
[15] | Zhou CB, Wang ZQ, Chen QY, et al. (2014) Design optimization and field demonstration of natural ventilation for high-rise residential buildings. Energy Build 82: 457-465. doi: 10.1016/j.enbuild.2014.06.036 |
[16] | Van Hooff T, Blocken B, Aanen L, et al. (2011) A venturi-shaped roof for wind-induced natural ventilation of buildings: wind tunnel and CFD evaluation of different design configurations. Build Environ 46: 1797-1807. doi: 10.1016/j.buildenv.2011.02.009 |
[17] | Liu PC, Lin HT, Chou JH (2009) Evaluation of buoyancy-driven ventilation in atrium buildings using computational fluid dynamics and reduced-scale air model. Build Environ 44: 1970-1979. doi: 10.1016/j.buildenv.2009.01.013 |
[18] | Hughes BR, Calautit JK, Ghani SA (2012) The development of commercial wind towers for natural ventilation: A review. Appl Energy 92: 606-627. doi: 10.1016/j.apenergy.2011.11.066 |
[19] | Mora-Pérez M, Guillén-Guillamón I, López-Patiño G, et al. (2016) Natural ventilation building design approach in Mediterranean regions-A case study at the Valencian coastal regional scale (Spain). Sustain 8: 855. doi: 10.3390/su8090855 |
[20] | ISO Standard 7730 (2005) Ergonomics of the thermal environment-Analytical determination and interpretation of thermal comfort using calculation of the PMV and PPD indices and local thermal comfort criteria. |
[21] | AENOR (2008) AEN/CTN 100. UNE-CR 1752:2008. Ventilation for buildings-Design criteria for the indoor environment. Comité técnico, Spain. Available from: http://www.aenor.es. |
[22] | ANSI/ASHRAE (2013) Thermal environmental conditions for human occupancy. |
[23] | Gagliano A, Nocera F, Patania F, et al. (2016) Synergic effects of termal mass and natural ventilation on the termal behaviour of traditional massive buildings. Int J Sustain Energy 35: 411-428. doi: 10.1080/14786451.2014.910517 |
[24] | CD-Adapco. Star CCM+ User's Manual. Available from: www.cd-adapco.com. |
[25] | Franke J, Hellsten A, Schlünzen H, et al. (2007) Best practice guideline for the CFD simulation of flows in the urban environment. Cost Off Bruss 44:1-52. |
[26] | Wieringa J (1992) Updating the Davenport roughness classification. J Wind Eng Ind Aerodyn 41: 357-368. doi: 10.1016/0167-6105(92)90434-C |
[27] | Agencia Estatal de Meteorología de España (AEMET). Spanish State Meteorological Agency, Ministry of Agriculture and Fisheries, Food and Environment. Available from: http://www.aemet.es. |
[28] | Windfinder. Available from: http://es.windfinder.com/windstats/windstatistic_valencia.htm. |
[29] | Manwell, JF, Mcgowan, JG, Rogers, AL (2009) Wind energy explained: theory, design and application, 2 Eds., Wiley. |
[30] | Peterson EW, Hennessey JP (1977) On the use of power laws for estimates of wind power potential. J Appl Meteorol 17. |
[31] | Justus CG, Mikhail A (1976) Height variation of wind speed and wind distributions statistics. Geophys Res Lett 3: 261-264. doi: 10.1029/GL003i005p00261 |
[32] | Ray SD, Gong NW, Glicksman LR, et al. (2014) Experimental characterization of full-scale naturally ventilated atrium and validation of CFD simulations. Energy Build 69: 285-291. doi: 10.1016/j.enbuild.2013.11.018 |
[33] | Shao JT, Liu J, Zhao JN (2012) Evaluation of various non-linear k-epsilon models for predicting wind flow around an isolated high-rise building within the surface boundary layer. Build Environ 57: 145-155. doi: 10.1016/j.buildenv.2012.04.018 |
[34] | García JAO, (2010) A review of general and local thermal comfort models for controlling indoor ambiences, In: Kumar, A. Author, Air Quality, InTech, 309-326. |
[35] | Fanger, PO (1972) Thermal comfort-Analysis and applications in environmental engineering, Kingsport Press. |
[36] | Reglamento de Instalaciones Térmicas en los Edificios (RITE). Ministerio de Industria, Energía y Turismo, Gobierno de España. Available from: http://www.minetur.gob.es/energia/desarrollo/EficienciaEnergetica/RITE/Paginas/InstalacionesTermicas.aspx. |
[37] | EN 13779:2007. Ventilation for non-residential buildings-Performance requirements for ventilation and room-conditioning systems. April 2007. |
[38] | Hajdukievwicz M, Geron M, Keane MM (2013) Formal calibration methodology for CFD models of naturally ventilated indoor environments. Build Environ 59: 290-302. doi: 10.1016/j.buildenv.2012.08.027 |
[39] | Van Hooff T, Blocken B (2010) On the effect of wind direction and urban surroundings on natural ventilation of a large semi-enclosed stadium. Comput Fluids 39: 1146-1155. doi: 10.1016/j.compfluid.2010.02.004 |
[40] | Lo LJ, Novoselac A (2012) Cross ventilation with small openings: Measurements in a multi-zone test building. Build Environ 57: 377-386. doi: 10.1016/j.buildenv.2012.06.009 |
[41] | Franke J, Hirsch C, Jensen AG, et al. (2004) Recommendations on the use of CFD in wind engineering. In: van Beeck, J.P.A.J. (Ed.), Proceedings of the International Conference Urban Wind Engineering and Building Aerodynamics, von Karman Institute. |