Characterization of wood fiber insulation for the development of wood fiber-insulated panels (WIPs) for use in building envelope

IF 1.3 4区 农林科学 Q2 MATERIALS SCIENCE, PAPER & WOOD Bioresources Pub Date : 2024-07-18 DOI:10.15376/biores.19.3.6142-6159
Jacob Snow, Benjamin Herzog, Liam O’Brien, Ling Li
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Abstract

Wood fiber insulation (WFI) was studied as an eco-friendly alternative for fossil-based building insulation, focusing on its use in new wood fiber-insulated panels (WIPs). Rigid WFI boards with densities of 110, 140, and 180 kg/m³, including a 140 kg/m³ variant without paraffin wax, were evaluated. Key properties investigated included porosity, water vapor transmission, liquid water adsorption, and thermal conductivity. The porosity ranged between 85 and 92%, primarily influenced by density. Water vapor permeability ranged from 65 to 90 ng·s-1m-1Pa-1, while liquid water absorption was between 2.5 and 20% by volume, influenced by both wax and density. The thermal conductivity coefficient ranged from 0.038 to 0.055 W/(m·K). Bond strength tests with WFI (140 kg/m³ with wax) laminated to various materials using structural adhesives showed tensile perpendicular-to-grain strengths of 10 to 16 kPa and shear strengths of 60 to 90 kPa, with failure only occurring within the WFI. It was concluded that WFI is a promising material for novel WIPs, offering competitive hygrothermal properties and compatibility with structural adhesives. However, its bio-based nature suggests variability and complexity, necessitating further rigorous testing in various climates and in more complex assemblies.
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为开发用于建筑围护结构的木纤维隔热板(WIPs)而对木纤维隔热材料进行表征
木纤维隔热材料(WFI)作为化石基建筑隔热材料的环保型替代品进行了研究,重点是其在新型木纤维隔热板(WIP)中的应用。对密度为 110、140 和 180 kg/m³ 的硬质 WFI 板(包括 140 kg/m³ 不含石蜡的变体)进行了评估。研究的主要特性包括孔隙率、水蒸气透过率、液态水吸附率和导热率。孔隙率在 85% 到 92% 之间,主要受密度影响。水蒸气透过率介于 65 到 90 ng-s-1m-1Pa-1 之间,而液态水吸附率介于 2.5 到 20% (按体积计算)之间,同时受到蜡和密度的影响。导热系数在 0.038 至 0.055 W/(m-K) 之间。使用结构粘合剂将 WFI(含蜡 140 千克/立方米)与各种材料层压的粘合强度测试表明,垂直于纹理的拉伸强度为 10 至 16 千帕,剪切强度为 60 至 90 千帕,只有在 WFI 内才会发生破坏。结论是,WFI 是一种很有前途的新型 WIP 材料,具有良好的湿热性能和与结构粘合剂的兼容性。不过,WFI 的生物基性质表明其具有可变性和复杂性,有必要在各种气候条件下和更复杂的组件中进行进一步的严格测试。
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来源期刊
Bioresources
Bioresources 工程技术-材料科学:纸与木材
CiteScore
2.90
自引率
13.30%
发文量
397
审稿时长
2.3 months
期刊介绍: The purpose of BioResources is to promote scientific discourse and to foster scientific developments related to sustainable manufacture involving lignocellulosic or woody biomass resources, including wood and agricultural residues. BioResources will focus on advances in science and technology. Emphasis will be placed on bioproducts, bioenergy, papermaking technology, wood products, new manufacturing materials, composite structures, and chemicals derived from lignocellulosic biomass.
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