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Thermal properties enhancement of poplar wood by substituting poly(furfuryl alcohol) for the matrix

机译:通过将聚(糠醇)替换为基质来增强杨木木材的热性能

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Using high-performance polymers to replace the weak points in wood may be an efficient approach to overcoming certain drawbacks while improving the properties of wood. This study investigated the feasibility of easily replacing part of the wood matrix in poplar wood with renewable poly(furfuryl alcohol) (PFA). The wood was first treated with an alkali solution and was then immersed in a furfuryl alcohol (FA) solution followed by in situ polymerization. After delignification, a large part of hemicelluloses and lignin were removed. In addition, wood porosity increased and more PFA was polymerized in the wood cell walls, resulting in increased weight percent gain and efficient bulking. The thermogravimetric analysis results indicated that the reformation strongly affected the wood thermal stability. A transformation with 30% FA maintained the porous structure of the wood and resulted in the highest maximum degradation temperature. The dynamic mechanical analysis results also indicated that reformation allowed for greater stress transfer at the interface and resulted in a lower damping peak and a higher storage modulus. Our approach, therefore, could provide a promising method to enhance the performance of wood by reforming the wood components and structures.
机译:使用高性能聚合物来取代木材中的弱点可能是克服某些缺点的有效方法,同时改善木材的性质。本研究调查了用可再生聚(糠醇)(PFA)在杨木木材中易于替代木质基质的一部分的可行性。首先用碱溶液处理木材,然后浸入糠醇(FA)溶液中,然后原位聚合。在亚马斯术后,除去大部分半纤维素和木质素。此外,在木细胞壁中,木孔隙率升高,更高的PFA聚合,导致增加的重量增加和有效膨胀。热重分析结果表明,改革强烈影响了木材热稳定性。具有30%Fa的转化保持了木材的多孔结构,导致最大的最大降解温度。动态机械分析结果表明还表明,允许在界面处的更大应力传递并导致较低的阻尼峰值和更高的储存模量。因此,我们的方法可以提供有希望的方法来通过改造木材部件和结构来增强木材性能。

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