Design limits for framed wall assemblies dependent on material choices for sheathing membranes and exterior insulation

Purpose The purpose of this paper is to propose a methodology for evaluating the hygrothermal performance of framed wall assemblies based on design limits. This methodology allows designers to evaluate wall assemblies based on their absolute performance rather than relative performance which is typically done for most hygrothermal analysis. Design/methodology/approach The approach in developing this methodology was to evaluate wall assemblies against three typical design loads (e.g. air leakage, construction moisture, rain penetration) and determine limits in minimum insulation ratio, maximum indoor humidity and maximum rain penetration rates. This analysis was performed at both the field area of the wall and at framing junctions such as window sills. Findings The findings in this paper shows example design limits for various wall assemblies in heating-dominated climates in North America. Design limits for wall assemblies with moisture membranes of different vapour permeance are provided for both the field area of the wall and at window sills. Discussions about the importance of 2D hygrothermal simulation and performance of vapour permeable sub-sill membranes are also provided. Originality/value This framework of hygrothermal analysis will enable designers to make better decisions when designing framed wall assemblies suitable to the local climate and interior specifications for their projects. It will also enable the development of a design tool that will allow designers to visually see the implications of certain design decisions and filter out designs that do not meet their design conditions.

[1]  T. Trainor The Hygrothermal Performance of Exterior Insulated Wall Systems , 2014 .

[2]  P. Morris,et al.  Decay initiation in plywood, OSB and solid wood under marginal moisture conditions. , 2011 .

[3]  Anton TenWolde,et al.  A Review of ASHRAE Standard 160—Criteria for Moisture Control Design Analysis in Buildings , 2011 .

[4]  Ruut Hannele Peuhkuri,et al.  Moisture and Bio-deterioration Risk of Building Materials and Structures , 2010 .

[5]  P. Roppel,et al.  Setting Realistic Design Indoor Conditions for Residential Buildings by Vapor Pressure Difference , 2009 .

[6]  J. Kurnitski,et al.  The effects of ventilation systems and building fabric on the stability of indoor temperature and humidity in Finnish detached houses , 2009 .

[7]  J. Vinha,et al.  Moisture and biodeterioration risk of building materials and structures , 2008 .

[8]  T. Ojanen,et al.  Improved model to predict mould growth in building materials , 2007 .

[9]  A. Teasdale-St-Hilaire Hygrothermal performance of different wood-frame wall assemblies wetted by simulated rain infiltration , 2006 .

[10]  John Straube,et al.  Building science for building enclosures , 2005 .

[11]  Nicole Normandin,et al.  Hygrothermal Properties of Several Building Materials , 2002 .

[12]  Report from CMHC: Survey of Building Envelope Failures in the Coastal Climate of British Columbia , 1999 .

[13]  P. Roppel,et al.  Modeling of Uncontrolled Indoor Humidity for HAM Simulations of Residential Buildings , 1995 .