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黑桤木树皮生物质在硬质聚氨酯泡沫组合物中的复杂增值利用

The Complex Valorization of Black Alder Bark Biomass in Compositions of Rigid Polyurethane Foam.

作者信息

Arshanitsa Alexandr, Pals Matiss, Vevere Laima, Jashina Lilija, Bikovens Oskars

机构信息

Latvian State Institute of Wood Chemistry, Dzerbenes Street 27, LV-1006 Riga, Latvia.

出版信息

Materials (Basel). 2024 Dec 26;18(1):50. doi: 10.3390/ma18010050.

Abstract

The use of black alder (BA) bark biomass in rigid polyurethane (PUR) foam compositions was the main task of investigation. Extractive compounds isolated from the bark through hot water extraction were used as precursors for bio-polyol synthesis via acid-free liquefaction with the polyether polyol Lupranol 3300 and through oxypropylation with propylene carbonate. The OH functionality and composition of the polyols were analyzed via wet chemistry and FTIR spectroscopy. The solid remaining after the isolation of extractive compounds was also utilized as a natural filler in PUR foams. The effects of replacing commercial polyols with bio-polyols on the foam rising rate and their mechanical properties, morphology, thermal conductivity, and thermal degradation characteristics were examined. The oxypropylated extractive-based PUR compositions demonstrated the most favorable balance between the biomass content and material properties. At an apparent density of 40 kg/m, the compressive strength of the produced foams was enhanced by 1.4-1.5 times, while the maximum thermal degradation rate in air decreased by 3.8-6.5 times compared to reference materials without adversely affecting the foam morphology. The composition based on liquefied extractives showed lower performance but still improved properties relative to the reference foams. Introducing 3.7-14% of extracted bark into the foam compositions increased the biomass content to 22-24%, although this led to a decrease in the compressive strength and thermal stability. It was shown that partially substituting fossil-derived components with renewable bark biomass in the composition of PUR foams allows for materials with characteristics similar or better to petrochemical-based materials to be obtained. Therefore, the results presented can be considered a contribution to addressing environmental problems and promoting the development of a sustainable economy.

摘要

研究的主要任务是将黑桤木(BA)树皮生物质用于硬质聚氨酯(PUR)泡沫组合物中。通过热水提取从树皮中分离出的萃取化合物用作生物多元醇合成的前体,通过与聚醚多元醇Lupranol 3300进行无酸液化以及与碳酸丙烯酯进行氧丙基化反应来合成生物多元醇。通过湿化学和傅里叶变换红外光谱(FTIR)对多元醇的羟基官能度和组成进行了分析。萃取化合物分离后剩余的固体也用作PUR泡沫中的天然填料。研究了用生物多元醇替代商业多元醇对泡沫上升速率及其机械性能、形态、热导率和热降解特性的影响。基于氧丙基化萃取物的PUR组合物在生物质含量和材料性能之间表现出最有利的平衡。在表观密度为40 kg/m时,所制备泡沫的抗压强度提高了1.4 - 1.5倍,而与参考材料相比,在空气中的最大热降解速率降低了3.8 - 6.5倍,且对泡沫形态没有不利影响。基于液化萃取物的组合物性能较低,但相对于参考泡沫仍有所改善。将3.7 - 14%的萃取树皮引入泡沫组合物中可使生物质含量增加到22 - 24%,尽管这会导致抗压强度和热稳定性下降。结果表明,在PUR泡沫组合物中用可再生树皮生物质部分替代化石衍生成分能够获得具有与石化基材料相似或更好特性的材料。因此,所呈现的结果可被视为对解决环境问题和促进可持续经济发展的贡献。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1ce1/11721132/9c0c6034335e/materials-18-00050-g001.jpg

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