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  4. Empirical investigation of the hygrothermal diffusion properties of permeable building membranes subjected to variable relative humidity condition
 
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2021
Journal Article
Title

Empirical investigation of the hygrothermal diffusion properties of permeable building membranes subjected to variable relative humidity condition

Abstract
Hygrothermal modelling is increasingly used to inform building envelope design. A key input for these calculations is the material's vapour diffusion properties. Respecting a growing international concern, this research has questioned the appropriateness of the current test method to establish construction material for vapour diffusion properties. This article reports on the empirical measurement of the vapour diffusion properties of two vapour-permeable building membranes commonly used in Australia residential systems when subjected to variable relative humidity conditions. The method involved completing dry cup and wet cup standard tests as specified in ISO12572, (23 °C and 50% relative humidity RH). Further tests were then conducted as temperature remained at 23 °C but the relative humidity changed to 35%, 65% and 80%, respectively, in order to know if the diffusion properties are the same or change with varying relative humidity. The results from the wet cup and dry cup tests under different relative humidity conditions were non-linear and different. These results indicate vapour-permeable membranes behave differently when exposed to different relative humidity conditions. In conclusion, this research demonstrates that the current vapour resistivity test method is inadequate, hence the need to establish more detailed diffusion resistivity properties in different humidity ranges that represent conditions experienced within a building's external envelope.
Author(s)
Olaoye, Toba Samuel
Univ. of Tasmania, School of Architecture and Design, Australia
Dewsbury, Mark
Univ. of Tasmania, School of Architecture and Design, Australia
Künzel, Hartwig  
Fraunhofer-Institut für Bauphysik IBP  
Journal
Energies  
Open Access
File(s)
Download (51.89 MB)
Rights
CC BY 4.0: Creative Commons Attribution
DOI
10.3390/en14134053
10.24406/publica-r-269610
Additional link
Full text
Language
English
Fraunhofer-Institut für Bauphysik IBP  
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