Thermal Behavior of a Ventilated Façade Using Perforated Ceramic Bricks
Commenced in January 2007
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Edition: International
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Thermal Behavior of a Ventilated Façade Using Perforated Ceramic Bricks

Authors: H. López-Moreno, A. Rodríguez-Sánchez, C. Viñas-Arrebola, C. Porras-Amores

Abstract:

The ventilated façade has great advantages when compared to traditional façades as it reduces the air conditioning thermal loads due to the stack effect induced by solar radiation in the air chamber. Optimizing energy consumption by using a ventilated façade can be used not only in newly built buildings but also it can be implemented in existing buildings, opening the field of implementation to energy building retrofitting works. In this sense, the following three prototypes of façade where designed, built and further analyzed in this research: non-ventilated façade (NVF); slightly ventilated façade (SLVF) and strongly ventilated façade (STVF). The construction characteristics of the three facades are based on the Spanish regulation of building construction “Technical Building Code”. The façades have been monitored by type-k thermocouples in a representative day of the summer season in Madrid (Spain). Moreover, an analysis of variance (ANOVA) with repeated measures, studying the thermal lag in the ventilated and no-ventilated façades has been designed. Results show that STVF façade presents higher levels of thermal inertia as the thermal lag reduces up to 17% (daily mean) compared to the non-ventilated façade. In addition, the statistical analysis proves that an increase of the ventilation holes size in STVF façades can improve the thermal lag significantly (p >0.05) when compared to the SLVF façade.

Keywords: Energy efficiency, experimental study, statistical analysis, thermal behavior, ventilated façade.

Digital Object Identifier (DOI): doi.org/10.5281/zenodo.1109155

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References:


[1] Institute for Diversification and Energy Savings (IDAE). Plan for Energy Saving and Efficiency 2011-2020. 2nd National Action Plan for Energy Efficiency in Spain. Available in: http://www.idae.es (Query: February, 2015).
[2] Directive 2002/91/CE of the European Parliament and of the Council of 16 December 2002 on the energy performance of buildings.
[3] Directive 20010/91/CE of the European Parliament and of the Council of 19 May 2002 on the energy performance of buildings (recast)
[4] Real Decreto 314/2006, of 17 March 2006 amending the Technical Building Code is approved. Available in: http://www.codigotecnico.org (Query: March 10, 2011).
[5] Real Decreto 47/2007, of January 19, amending the Basic Procedure for certification of energy efficiency of new buildings is approved.
[6] E. Giancola A.; C. Sanjuan A.; E. Blanco B.; M. R. Heras. Experimental assessment and modelling of the performance of an open joint¸ ventilated façade during actual operating conditions in Mediterranean climate. Energy and Buildings, 2012, Vol.54, 363-375
[7] Patania, F.; Gagliano, A.; Nocera, F.; Ferlito, A.; Gasely, A.. “Thermofluid- dynamic analysis of ventilated facades”. Energy and Buildings, 2010, Vol.42, Issue 7, 148-155.
[8] Suareza, C.; Joubert, P.; Molina, J. L.; Sánchez, F. J. “Heat transfer and mass flow correlations for ventilated facades”. Energy and Buildings, 2011, Vol.43, 3696-3703.
[9] García de María, J. M. Baïri, A., Costa V. A. F. “Empirical correlations at high Ra for steady-state free convection in 2D air filled parallelogrammic enclosures with discrete heat sources”. International Journal of Heat and Mass Transfer, Vol. 53, Issues 19-20, September 2010, Pages 3831-3838
[10] Silvestre L., García de María, J. M., Camarasa M., Viñas C. “Thermal study of glass façades”. VII National Congress of Engineering Thermodynamic. Bilbao. June 2011
[11] Kinnear, P. R. and C. D. Gray, SPSS 15 Made Simple, ed. P.P. Ltd. 2007, Brighton & Hove and New York: Taylor & Francis Group.