The thermal performance of earth buildings
DOI:
https://doi.org/10.3989/ic.10.024Keywords:
thermal performance, earth walls, thermal resistance, adobe, cob, pise, pressed earth bricksAbstract
This paper examines the theoretical basis for the thermal performance of earth walls and links it to some test results on buildings constructed by the author, and to their predicted performance using a sophisticated computer modelling program. The analysis shows that for all earth walls the steady state thermal resistance is low but that for walls greater than about 450 mm thick the cyclic thermal resistance is high and increases exponentially. Whilst the steady state resistance of all thickness walls is low and results in higher than normal average temperatures in summer and lower than normal in winter the ability of thick earth walls to even out the swings in temperature is thought to be responsible for the materials reputation. The paper notes that good passive design principles (such as providing internal thermal mass and large areas of glazing for winter performance) will greatly improve the performance of earth buildings with thin walls, but it is the author’s opinion that external earth walls should be at least 450 mm thick to gain the full benefit of thermal mass.
Downloads
References
(1) Australia Building Codes Board, “BCA 2007 – Building Code of Australia, Class 1 and Class 10 Buildings, Housing Provisions”, 2007.
(2) Goodhew, S.; Griffiths, R.: “Sustainable earth walls to meet the building regulations”, Energy and Buildings, Vol 37(2005), pp. 451-459. http://dx.doi.org/10.1016/j.enbuild.2004.08.005
(3) CIBSE, “CIBSE Guide – Volume A – Design Data”, The Chartered Institution of Building Services Engineers, London, 1986.
(4) Walsh, P. J.; Delsante, A.E.: “Calculation of the Thermal Behaviour of Multi-Zone Buildings”, Energy and Buildings, Vol 5 (1983), pp. 231-242. http://dx.doi.org/10.1016/0378-7788(83)90011-7
(5) Heathcote, K.A.: “Comparison of the Summer Thermal Performance of Three Test Buildings with that Predicted by the Admittance Procedure”, Architectural Science Review, Vol 51, No 1 (2008), pp. 31-39. http://dx.doi.org/10.3763/asre.2008.5105
(6) Minke,G.: Building With Earth. Birkhauser, Basel, 2006.
(7) Arnold, P.J.: “Thermal conductivity of masonry materials”. The Journal of the Institution of Heating and Ventilating Engineers, Vol. 37 (1969), pp. 101-108 and 11.
(8) Davies, M.G.: Building Heat Transfer, pp. 335-351. John Wiley & Sons Ltd, 2004. http://dx.doi.org/10.1002/0470020555.ch15
(9) ASHRAE Standard 55-2004, “Thermal Environmental Conditions for Human Occupancy”, 2004.
(10) Dear, R.J.; Brager, G.S.: “Thermal comfort in naturally ventilated buildings: revisions to ASHRAE Standard 55”, Energy and Buildings, Vol 34 (2002), pp. 549-561. http://dx.doi.org/10.1016/S0378-7788(02)00005-1
(11) Spencer, J.W.: “Sydney Solar Tables”, CSIRO Aust. Div. Bldg. Res. Tech. Paper, No 8 (1975).
Downloads
Published
How to Cite
Issue
Section
License
Copyright (c) 2011 Consejo Superior de Investigaciones Científicas (CSIC)

This work is licensed under a Creative Commons Attribution 4.0 International License.
© CSIC. Manuscripts published in both the print and online versions of this journal are the property of the Consejo Superior de Investigaciones Científicas, and quoting this source is a requirement for any partial or full reproduction.
All contents of this electronic edition, except where otherwise noted, are distributed under a Creative Commons Attribution 4.0 International (CC BY 4.0) licence. You may read the basic information and the legal text of the licence. The indication of the CC BY 4.0 licence must be expressly stated in this way when necessary.
Self-archiving in repositories, personal webpages or similar, of any version other than the final version of the work produced by the publisher, is not allowed.







