Methodological aspects in assessing the whole-life global warming potential of wood-based building materials: Comparing exterior wall structures insulated with wood shavings

Tuomo Joensuu, Eero Tuominen, Juha Vinha, Arto Saari
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引用次数: 1

Abstract

Abstract Due to the heavy environmental impacts on the building industry, wood-based building materials are gaining interest. They may improve the indoor climate and have a low carbon footprint compared to steel and concrete structures. This study provides knowledge on the carbon footprint of wood shavings (WSs) and WSs improved with clay as insulation materials. The study defines the lifecycle emissions of five different wall structures, of which two are of conventional type in the Finnish context and three with WSs as insulation. The study follows the EN standards on buildings’ life cycle assessment with a streamlined approach and discusses the applicability of the method in the normative context. The study analyzes multiple methodological aspects, including biogenic carbon, co-product allocation, and defining the functional unit in wall structure comparison. In the base case, the exterior wall using WS as insulation provided the lowest GHG emissions of the compared structures. The study finds global warming potential (GWP) of WSs moderately sensitive to allocation choices and energy sources used in the drying of WSs with clay, while the End-of-Life treatment option can radically change the results in biogenic GWP. From the perspective of applying the buildings’ life cycle assessment in the normative context, there is a call for further research for controlling uncertainties in modeling End-of-Life options of biogenic materials.
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评估木质建筑材料全寿命期全球变暖潜势的方法方面:比较用木屑保温的外墙结构
由于建筑行业对环境的严重影响,木质建筑材料正受到人们的关注。与钢结构和混凝土结构相比,它们可以改善室内气候,并且碳足迹低。本研究提供了关于木材刨花(WSs)和用粘土作为保温材料改进的WSs的碳足迹的知识。该研究定义了五种不同墙体结构的生命周期排放,其中两种是芬兰的传统类型,三种是WSs作为绝缘材料。本研究以简化的方法遵循EN建筑生命周期评估标准,并讨论了该方法在规范背景下的适用性。该研究分析了多个方法方面,包括生物碳,副产物分配,以及在壁结构比较中定义功能单元。在基本情况下,使用WS作为保温材料的外墙在比较的结构中提供了最低的温室气体排放。研究发现,WSs的全球变暖潜能值(GWP)对分配选择和使用粘土干燥WSs的能源较为敏感,而生命终止处理选项可以从根本上改变生物源GWP的结果。从建筑生命周期评估规范应用的角度出发,需要进一步研究如何控制生物材料寿命终止选择建模中的不确定性。
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