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Environmental Performance of Tannin-Stabilized Unfired Earth Bricks: A Comparative Life Cycle Assessment
Linked Sessions:
Main Presenter: Florian Bahé
Co-Authors: Charlotte Lovage
Unfired earth is widely recognized as a construction material with high environmental potential, mainly due to the absence of firing and the possibility of local sourcing. However, its industrial deployment remains limited. Mechanical performance and water sensitivity are often considered insufficient, leading to the frequent use of mineral binders, which are often associated with high environmental impacts. In this context, the development of alternative stabilization strategies with low environmental impact and compatibility with existing industrial processes represents a major challenge. Here, tannins — naturally abundant polyphenolic compounds— are used to reduce the water content of clay pastes and improve extrusion behaviour. Their ability to form coordination complexes with metal ions is exploited through the addition of iron powder1. After drying, stabilized bricks exhibit increased compressive strength and improved water resistance.
This study presents a comparative life cycle assessment (LCA) of extruded unfired earth bricks stabilized with tannin and iron, and conventional extruded fired clay bricks. The objective is to assess whether an emerging technology based on tannin–iron biostabilization can reduce overall environmental impacts compared with firing, while ensuring mechanical performance compatible with the intended applications. This work was conducted as a collaboration between the MATEIS laboratory at INSA Lyon, providing expertise in earthen construction, and the consulting firm VERSo, specialized in LCA.
A prospective cradle-to-grave LCA is performed based on a projected industrial-scale production system for tannins2, following the ISO 14040–14044 standards. Environmental impacts are assessed using the Environmental Footprint (EF) 3.1 method. Prospective scenarios are also applied to background systems through the modelling of future energy mixes.
Tannin extraction is identified as the main environmental driver, as it relies on extraction processes involving heat demand, solvent use, and concentration steps. Despite these contributions, preliminary results indicate that tannin extraction has lower impacts than the high-temperature firing of conventional bricks. The bio-based nature of tannins, their potential sourcing from forestry by-products, and opportunities for heat recovery and solvent recycling at industrial scale may further limit their overall environmental footprint. Sensitivity analyses highlight a dependence on assumptions related to process scale-up, extraction yields, and energy sources. These results confirm the potential of bio-based stabilization strategies for the development of low-impact earth construction materials and underline the need for future studies combining mechanical performance, environmental assessment, economic analysis, and social aspects to fully evaluate their industrial viability.