Bin Li’s PhD Thesis Defense Announcement — PhD in Wood and Bio-Based Materials Engineering — August 25, 2026, at 1:30 p.m.

25 August 2026

You are cordially invited to attend the PhD thesis defense of Bin Li, a doctoral candidate in Wood Engineering and Bio-Based Materials, which will take place on August 25, 2026, at 1:30 p.m. at Université Laval.

For those who wish to attend online: (Zoom link to follow)

August 25, 2026, at 1:30 p.m.
Louis-Jacques-Casault Building
Room CSL-3632
Université Laval

Jury Members

Chair: Véronic Landry, Faculty of Forestry, Geography and Geomatics, Université Laval
Research Supervisor: Pierre Blanchet, Faculty of Forestry, Geography and Geomatics, Université Laval
UL Examiner: Louis Gosselin, Department of Mechanical Engineering and Industrial Engineering, Université Laval
External Examiner: Franz Segovia, SEREX
UL Examiner: Bertrand Laratte, Faculty of Forestry, Geography and Geomatics, Université Laval
UL Examiner: Alain Cloutier, Faculty of Forestry, Geography and Geomatics, Université Laval

Title: Characterization and Modeling of Wood Building Envelope Performance with Biobased Phase Change Materials (PCMs)

Summary : The wood-frame building typology is prevalent in North American residential construction. As a lightweight structure system, it offers a low embodied environmental footprint and facilitates efficient construction. However, the inherently low thermal mass of wood poses a constraint on both building energy efficiency and indoor thermal comfort. In this context, novel strategies are required to reduce building energy consumption while maintaining indoor thermal comfort. A thermal energy storage (TES) system utilizing phase change materials (PCMs) addresses energy intermittency and is extensively employed in buildings to enhance thermal comfort, provide thermal protection, and achieve energy savings. However, the gap remains in innovative building envelope design incorporating PCMs, particularly biobased PCMs, for high-insulated wood-frame building envelopes under cold-climate conditions. The overall goal of this project is to contribute to knowledge on the use of PCMs and support the reduction of energy consumption and the improvement of thermal comfort in living spaces in Canada.

Firstly, a numerical simulation was carried out to assess the effects of different factors (PCMs melting point, surface area, thickness, and location) by adding a PCMs layer to building wall assemblies to reduce annual heating and cooling loads. Then, a full-scale experimental study that focused on the effectiveness of PCMs in different wall thermal resistances under various climates was conducted using a climate chamber. Finally, the thermal load and thermal comfort of residential buildings containing PCMs in three Canadian cities (Quebec City, Toronto, and Vancouver), which represent three different climate regions, were evaluated through a numerical study.

The effectiveness of PCMs in building applications depends not only on PCMs properties but also on integration techniques. The results of the thesis highlight that the PCMs layer increases the thermal inertia of the wood-frame building envelope and improves the energy management of a building under cold climate conditions. This thesis also developed strategies to enhance the integrity and thermal performance of wood-frame building envelopes by using macro-encapsulated biobased PCMs in building applications.


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