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Modeling Strategy And Numerical Validation Of The Turbulent Flow Over A Two-Dimensional Flat Roof

Authors: Marco Raciti Castelli; Alberto Castelli; BENINI, ERNESTO;

Modeling Strategy And Numerical Validation Of The Turbulent Flow Over A Two-Dimensional Flat Roof

Abstract

{"references": ["Blocken, B., Carmeliet, J., Pedestrian Wind Environment around\nBuildings: Literature Review and Practical Examples, Journal of\nThermal Envelope and Building Science, Oct 2004, 28: 107-159;", "Jensen, A. G., Franke, J., Hirsch, C., Schatzmann, M., Stathopoulos, T.,\nWisse, J., Wright, N. G., Impact of Wind and Storm on City Life and\nBuilt Environment - Working Group 2 - CFD Techniques -\nComputational Wind Engineering, Proceedings of the International\nConference on Urban Wind Engineering and Building Aerodynamics,\nCOST Action C14, Von Karman Institute, Rhode-Saint-Gen\u00e8se,\nBelgium, May 5-7, 2004;", "Yoshie, R., Mochida, A., Tominaga, Y., Kataoka, H., Harimoto, K.,\nNozu, T., Shirasawa, T., Cooperative Project for CFD Prediction of\nPedestrian Wind Environment in the Architectural Institute of Japan,\nJournal of Wind Engineering and Industrial Aerodynamics, 95 (2007)\n1551-1578;", "Franke, J., Hirsch, C., Jensen, A. G., Krus, H. W., Schatzmann, M.,\nWestbury, P. S., Miles, S. D., Wisse, J. A., Wright, N. G.,\nRecommendations on the Use of CFD in Wind Engineering, Proceedings\nof the International Conference on Urban Wind Engineering and\nBuilding Aerodynamics, COST Action C14, Von Karman Institute,\nRhode-Saint-Gen\u00e8se, Belgium, May 5-7, 2004;", "Stathopoulos, T., Wind Effects on People, Proceedings of the\nInternational Conference on Urban Wind Engineering and Building\nAerodynamics, COST Action C14, Von Karman Institute, Rhode-Saint-\nGen\u00e8se, Belgium, May 5-7, 2004;", "Ozmen, Y., Van Beeck, J. P. A. J., Baydar, E., The Turbulent Flow over\nThree Dimensional Roof Modles Immersed in an Atmospheric Boundary\nLayer, Proceedings of the International Conference on Urban Wind\nEngineering and Building Aerodynamics, COST Action C14, Von\nKarman Institute, Rhode-Saint-Gen\u00e8se, Belgium, May 5-7, 2004;", "Dalgliesh, W. A., Wind Loads on Low Buildings, Division of Building\nResearch, National Research Council of Canada, Ottawa, January 1981;", "http://www.vki.ac.be/;", "Parmentier, B., Hoxey, R., Buchlin, J. M., Corieri, P., The Assessment of\nFull Scale Experimental Methods for Measuring Wind Effects on Low\nRise Buildings, COST Action C14, Impact of Wind and Storm on City\nLife and Built Environment, June 3-4, 2002, Nantes, France;\n[10] Counihan, J., An Improved Method of Simulating an Atmospheric\nBoundary Layer in a Wind Tunnel, Atmos. Environ., Vol. 3 (1969), pp.\n197-214;\n[11] http://www.vki.ac.be/index.php?option=com_content&view=article&id\n=60:low-speed-wind-tunnel-l-2b&catid=48:low-speed-windtunnels&\nItemid=151."]}

The construction of a civil structure inside a urban area inevitably modifies the outdoor microclimate at the building site. Wind speed, wind direction, air pollution, driving rain, radiation and daylight are some of the main physical aspects that are subjected to the major changes. The quantitative amount of these modifications depends on the shape, size and orientation of the building and on its interaction with the surrounding environment.The flow field over a flat roof model building has been numerically investigated in order to determine two-dimensional CFD guidelines for the calculation of the turbulent flow over a structure immersed in an atmospheric boundary layer. To this purpose, a complete validation campaign has been performed through a systematic comparison of numerical simulations with wind tunnel experimental data.Several turbulence models and spatial node distributions have been tested for five different vertical positions, respectively from the upstream leading edge to the downstream bottom edge of the analyzed model. Flow field characteristics in the neighborhood of the building model have been numerically investigated, allowing a quantification of the capabilities of the CFD code to predict the flow separation and the extension of the recirculation regions.The proposed calculations have allowed the development of a preliminary procedure to be used as a guidance in selecting the appropriate grid configuration and corresponding turbulence model for the prediction of the flow field over a twodimensional roof architecture dominated by flow separation.

Country
Italy
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Keywords

wind., building, roof, CFD

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