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147466 - Laboratory measurement and boundary conditions.pdf (2.14 MB)

Laboratory measurement and boundary conditions for the water vapour resistivity properties of typical Australian impermeable and smart pliable membranes

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journal contribution
posted on 2023-05-21, 03:41 authored by Toba Olaoye, Mark DewsburyMark Dewsbury, Kunzel, H
The duo of better insulated and more air-tight envelopes without appropriate consideration of water vapour diffusion and envelope moisture management has often demonstrated an increased potential of moisture accumulation, interstitial condensation, and mould growth within the building envelope. To inform a resilient, energy efficient, and healthy building design, long-term transient hygrothermal modelling are required. Since 2008, concern has been raised to the Australian building regulators regarding the need to establish the vapour diffusion properties of construction materials, in order to develop a hygrothermal regulatory framework. This paper discusses the results from laboratory testing of the vapour diffusion properties of two common reflective pliable membranes, and one smart pliable membrane. The two reflective pliable membranes are often used within the exterior walls of Australian buildings. The smart pliable membrane is a relatively new, internationally available product. The three membranes were tested as per ISO 12,572 at 23 C and 50% RH. To establish if the vapour resistivity properties were constant, under different relative humidity conditions, the membranes were further tested at 23 C and relative humidity values of 35%, 65%, and 80%. The results of the three pliable membranes show that the vapour resistivity properties varied in a non-linear (dynamic) manner subject to relative humidity. In conclusion, this research demonstrates that regardless of the class, each of the tested membrane types behaved differently under varying relative humidity and pressure gradients within the testing laboratory.

History

Publication title

Buildings

Volume

11

Issue

11

Article number

509

Number

509

Pagination

1-29

ISSN

2075-5309

Department/School

School of Architecture and Design

Publisher

MDPI AG

Place of publication

Switzerland

Rights statement

Copyright 2021 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https:// creativecommons.org/licenses/by/ 4.0/).

Repository Status

  • Open

Socio-economic Objectives

Polymeric materials and paints; Residential construction processes; Residential energy efficiency