Validation of numerical simulation tools for wind-driven natural ventilation design

Nuno R. Martins1, Guilherme Carrilho da Graça1
1Instituto Dom Luiz, Faculdade de Ciências, Universidade de Lisboa, Lisboa, Portugal

Tóm tắt

Từ khóa


Tài liệu tham khảo

Anderson JD (1995). Computational Fluid Dynamics: The Basics with Applications. New York: McGraw-Hill.

Asfour OS, Gadi MB (2007). A comparison between CFD and network models for predicting wind-driven ventilation in buildings. Building and Environment, 42: 4079–4085.

Awbi H (2003). Ventilation of Buildings. New York: Spon Press.

Axley J (2007). Multizone airflow modeling in buildings: History and theory. HVAC&R Research, 13: 907–928.

Belleri A, Lollini L, Dutton SM (2014). Natural ventilation design: An analysis of predicted and measured performance. Building and Environment, 81: 123–138.

Bitsuamlak B (2006). Application of computational wind engineering: A practical perspective. In: Proceedings of 3rd National Conference in Wind Engineering, Kolkata, India.

Blocken B (2014). 50 years of computational wind engineering: Past, present and future. Journal of Wind Engineering and Industrial Aerodynamics, 129: 69–102.

Calautit JK, Hughes BR (2014). Wind tunnel and CFD study of the natural ventilation performance of a commercial multi-directional wind tower. Building and Environment, 80: 71–83.

California Building Standards Commission (2013). California Building Standards Code, California Code of Regulations, Title 24.

Carrilho da Graça G (2003). Simplified models for heat transfer in rooms. PhD Dissertation, University of California, San Diego, USA.

Carrilho da Graça G, Linden PF, Haves P (2004). Design and testing of a control strategy for a large, naturally ventilated office building. Building Services Engineering Research and Technology, 25: 223–239.

Carrilho da Graça G, Martins NR, Horta CS (2012). Thermal and airflow simulation of a naturally ventilated shopping mall. Energy and Buildings, 50: 177–188.

Carrilho da Graça G, Daish NC, Linden PF (2015). A two-zone model for natural cross-ventilation. Building and Environment, 89: 72–85.

Cermak JE (1971). Laboratory simulation of the atmospheric boundary layer. AIAA Journal, 9: 1746–1754.

Cermak JE (1975). Applications of fluid mechanics to wind engineering. Journal of Fluids Engineering, 97: 9–38.

Cermak JE (1976). Aerodynamics of Buildings. Annual Review of Fluid Mechanics, 8: 75–106.

CHAM Ltd. (2012). PHOENICS 2011 (64bit Intel 17/06/2012). London.

Chen Q (1995). Comparison of different k–e models for indoor air flow computations. Numerical Heat Transfer, Part B: Fundamentals, 28: 353–369.

Chen Q (2009). Ventilation performance prediction for buildings: A method overview and recent applications. Building and Environment, 44: 848–858.

Cheung JOP, Liu C-H (2011). CFD simulations of natural ventilation behaviour in high-rise buildings in regular and staggered arrangements at various spacings. Energy and Buildings, 43: 1149–1158.

Cochran L, Derickson R (2011). A physical modeler’s view of computational wind engineering. Journal of Wind Engineering and Industrial Aerodynamics, 99: 139–153.

CPP Wind (2015). CPP Wind Engineering & Air Quality Experts, CPP Wind Engineering & Air Quality Consulting for Building Design. Available at http://www.cppwind.com.

Crawley DB, Lawrie LK, Winkelmann FC, Buhl WF, Joe Huang Y, Pedersen CO, Strand RK, Liesen RJ, Fisher DE, Witte MJ, Glazer J (2001). EnergyPlus: Creating a new-generation building energy simulation program. Energy and Buildings, 33: 319–331.

Dutton SM, Banks D, Brunswick SL, Fisk WJ (2013). Health and economic implications of natural ventilation in California offices. Building and Environment, 67: 34–45.

Evola E, Popov V (2006). Computational analysis of wind driven natural ventilation in buildings. Energy and Buildings, 38: 491–501.

Franke J, Hellsten A, Schlünzen H, Carissimo B (2007). Best practice guideline for the CFD simulation of flows in the urban environment. Brussels: COST Office.

Glória Gomes M, Moret Rodrigues A, Mendes P (2005). Experimental and numerical study of wind pressures on irregular-plan shapes. Journal of Wind Engineering and Industrial Aerodynamics, 93: 741–756.

Heiselberg P, Svidt K, Nielsen PV (2001). Characteristics of airflow from open windows. Building and Environment, 36: 859–869.

Heiselberg P, Bjørn E, Nielsen PV (2002). Impact of open windows on room air flow and thermal comfort. International Journal of Ventilation, 1: 91–100.

Lo JL, Banks D, Novoselac A (2013). Combined wind tunnel and CFD analysis for indoor airflow prediction of wind-driven cross ventilation. Building and Environment, 60: 12–23.

Jiang Y, Chen Q (2002). Effect of fluctuating wind direction on cross natural ventilation in buildings from large eddy simulation. Building and Environment, 37: 379–386.

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. Journal of Wind Engineering and Industrial Aerodynamics, 91: 331–353.

Karava P, Stathopoulos T, Athienitis AK (2011). Airflow assessment in cross-ventilated buildings with operable facade elements. Building and Environment, 46: 266–279.

Kato S, Murakami S, Mochida A, Akabayashi S-I, Tominaga Y (1992). Velocity-pressure field of cross ventilation with open windows analyzed by wind tunnel and numerical simulation. Journal of Wind Engineering and Industrial Aerodynamics, 44: 2575–2586.

Kobayashi T, Sandberg M, Kotani H, Claesson L (2010). Experimental investigation and CFD analysis of cross-ventilated flow through single room detached house model. Building and Environment, 45: 2723–2734.

Labat M, Woloszyn M, Garnier G, Roux JJ (2013). Assessment of the air change rate of airtight buildings under natural conditions using the tracer gas technique. Comparison with numerical modelling. Building and Environment, 60: 37–44.

Linden PF (1999). The fluid mechanics of natural ventilation. Annual Review of Fluid Mechanics, 31: 201–238.

Liu X, Niu J, Kwok KCS (2013). Evaluation of RANS turbulence models for simulating wind-induced mean pressures and dispersions around a complex-shaped high-rise building. Building Simulation, 6: 151–164.

Montazeri H, Blocken B (2013). CFD simulation of wind-induced pressure coefficients on buildings with and without balconies: Validation and sensitivity analysis. Building and Environment, 60: 137–149.

Nikas K-S, Nikolopoulos N, Nikolopoulos A (2010). Numerical study of a naturally cross-ventilated building. Energy and Buildings, 42: 422–434.

Nikolopoulos N, Nikolopoulos A, Larsen TS, Nikas K-SP (2012). Experimental and numerical investigation of the tracer gas methodology in the case of a naturally cross-ventilated building. Building and Environment, 56: 379–388.

Richards PJ, Norris SE (2011). Appropriate boundary conditions for computational wind engineering models revisited. Journal of Wind Engineering and Industrial Aerodynamics, 99: 257–266.

Seifert J, Li Y, Axley J, Rösler M (2006). Calculation of wind-driven cross ventilation in buildings with large openings. Journal of Wind Engineering and Industrial Aerodynamics, 94: 925–947.

Seppänen O, Fisk WJ (2002). Association of ventilation system type with SBS symptoms in office workers. Indoor Air, 12: 98–112.

Shen X, Zhang G, Bjerg B (2012). Comparison of different methods for estimating ventilation rates through wind driven ventilated buildings. Energy and Buildings, 54: 297–306.

Teppner R, Langensteiner B, Meile W, Brenn G, Kerschbaumer S (2014). Air change rates driven by the flow around and through a building storey with fully open or tilted windows: An experimental and numerical study. Energy and Buildings, 76: 640–653.

Tominaga Y, Mochida A, Murakami S, Sawaki S (2008a). Comparison of various revised k–e models and LES applied to flow around a high-rise building model with 1:1:2 shape placed within the surface boundary layer. Journal of Wind Engineering and Industrial Aerodynamics, 96: 389–411.

Tominaga Y, Mochida A, Yoshie R, Kataoka H, Nozu T, Yoshikawa M, Shirasawa T (2008b). AIJ guidelines for practical applications of CFD to pedestrian wind environment around buildings. Journal of Wind Engineering and Industrial Aerodynamics, 96: 1749–1761.

United States Environmental Protection Agency (1981). Guideline for Fluid Modeling of Atmospheric Diffusion, United States Environmental Protection Agency, Report EPA-600/8-81-009.

van Hooff T, Blocken B, Aanen L, Bronsema B (2011). A venturishaped roof for wind-induced natural ventilation of buildings: Wind tunnel and CFD evaluation of different design configurations. Building and Environment, 46: 1797–1807.

van Hooff T, Blocken B (2013). CFD evaluation of natural ventilation of indoor environments by the concentration decay method: CO2 gas dispersion from a semi-enclosed stadium. Building and Environment, 61: 1–17.

Wilcox S, Marion W (2008). User’s Manual for TMY3 Datasets, NREL/TP-581-43156. Colorado: National Renewable Energy Laboratory.

Zhang A, Gu M (2008). Wind tunnel tests and numerical simulations of wind pressures on buildings in staggered arrangement. Journal of Wind Engineering and Industrial Aerodynamics, 96: 2067–2079.

Zhou C, Wang Z, Chen Q, Jiang Y, Pei J (2014). Design optimization and field demonstration of natural ventilation for high-rise residential buildings. Energy and Buildings, 82: 457–465.