TY - GEN
T1 - Hygrothermal Performance of Bio-Based Materials in Residential Building Wall Envelope Systems
AU - Palani, Hevar
AU - Sumathipala, Kuma
AU - Desjarlais, Andre
N1 - Publisher Copyright:
© 2025 ASHRAE (www.ashrae.org).
PY - 2025
Y1 - 2025
N2 - In the United States, building envelope systems contribute approximately 28% of building energy consumption, with walls being a primary factor. As the construction industry explores new approaches to lower the energy intensity needed to manufacture materials and, in turn, reduce energy consumption, bio-based materials are gaining attention as a promising alternative. While prior studies have demonstrated that bio-based materials can decrease material energy intensity, their long-term hygrothermal behavior within a whole residential wall system is not yet fully understood. This study aims to evaluate the potential of replacing Oriented Strand Board (OSB) and drvwall in residential wall systems with bio-based alternatives. The research focuses on two bio-based materials, assessing their hygrothermal performance under Chicago climate condition (Climate Zone 5). To achieve that, a series of laboratory experiments were conducted to measure key properties of the bio-based materials such as thickness, dimensions, density, thermal conductivity (as a function of temperature and humidity), moisture-dependent permeance and water vapor permeability (WVP), and sorption isotherms. These properties were then used in WUF1simulations to predict the moisture durability of a standard residential wall system in Climate Zone 5. Results show that substituting OSB and drywall with bio-based materials can achieve acceptable moisture durability, effectively mitigating risks ofmold growth and structural damage over time.
AB - In the United States, building envelope systems contribute approximately 28% of building energy consumption, with walls being a primary factor. As the construction industry explores new approaches to lower the energy intensity needed to manufacture materials and, in turn, reduce energy consumption, bio-based materials are gaining attention as a promising alternative. While prior studies have demonstrated that bio-based materials can decrease material energy intensity, their long-term hygrothermal behavior within a whole residential wall system is not yet fully understood. This study aims to evaluate the potential of replacing Oriented Strand Board (OSB) and drvwall in residential wall systems with bio-based alternatives. The research focuses on two bio-based materials, assessing their hygrothermal performance under Chicago climate condition (Climate Zone 5). To achieve that, a series of laboratory experiments were conducted to measure key properties of the bio-based materials such as thickness, dimensions, density, thermal conductivity (as a function of temperature and humidity), moisture-dependent permeance and water vapor permeability (WVP), and sorption isotherms. These properties were then used in WUF1simulations to predict the moisture durability of a standard residential wall system in Climate Zone 5. Results show that substituting OSB and drywall with bio-based materials can achieve acceptable moisture durability, effectively mitigating risks ofmold growth and structural damage over time.
UR - https://www.scopus.com/pages/publications/105043473700
U2 - 10.63044/b16pai03
DO - 10.63044/b16pai03
M3 - Conference contribution
AN - SCOPUS:105043473700
T3 - Thermal Performance of the Exterior Envelopes of Whole Buildings
BT - Thermal Performance of the Exterior Envelopes of Whole Buildings XVI International Conference
PB - American Society of Heating Refrigerating and Air-Conditioning Engineers
T2 - 16th International Conference on Thermal Performance of the Exterior Envelopes of Whole Buildings 2025
Y2 - 8 December 2025 through 11 December 2025
ER -