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Upgrading Sustainable Polyurethane Foam Based on Greener Polyols: Succinic-Based Polyol and Mannich-Based Polyol

机译:基于绿色多元醇提高可持续聚氨酯泡沫:琥珀酸基多元醇和曼尼希基多元醇

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摘要

It is well known that the traditional synthetic polymers, such as Polyurethane foams, require raw materials that are not fully sustainable and are based on oil-feedstocks. For this reason, renewable resources such as biomass, polysaccharides and proteins are still recognized as one of the most promising approaches for substituting oil-based raw materials (mainly polyols). However, polyurethanes from renewable sources exhibit poor physical and functional performances. For this reason, the best technological solution is the production of polyurethane materials obtained through a partial replacement of the oil-based polyurethane precursors. This approach enables a good balance between the need to improve the sustainability of the polymer and the need to achieve suitable performances, to fulfill the technological requirements for specific applications. In this paper, a succinic-based polyol sample (obtained from biomass source) was synthesized, characterized and blended with cardanol-based polyol (Mannich-based polyol) to produce sustainable rigid polyurethane foams in which the oil-based polyol is totally replaced. A suitable amount of catalysts and surfactant, water as blowing reagent and poly-methylene diphenyl di-isocyanate as isocyanate source were used for the polyurethane synthesis. The resulting foams were characterized by means of infrared spectroscopy (FTIR) to control the cross-linking reactions, scanning electron microscopy (SEM) to evaluate the morphological structure and thermal gravimetric analysis (TGA) and thermal conductivity to evaluate thermal degradation behavior and thermal insulation properties.
机译:众所周知,传统的合成聚合物,例如聚氨酯泡沫,要求原料不完全可持续,并基于油原料。因此,诸如生物质,多糖和蛋白质的可再生资源仍被认为是替代油基原料(主要多元醇)的最有前途方法之一。然而,来自可再生能源的聚氨酯表现出差的物理和功能性能。因此,最好的技术解决方案是通过替代油基聚氨酯前体的部分替代获得聚氨酯材料。这种方法能够在提高聚合物的可持续性方面的需求之间实现良好的平衡,并且需要实现合适的性能,以满足特定应用的技术要求。在本文中,合成,用琥珀酸基多元醇样品(从生物质源获得),其特征和混合与碳糖基多元醇(Mannich基多醇)混合,以产生可持续的刚性聚氨酯泡沫,其中完全替换油基多元醇。将适量的催化剂和表面活性剂,水作为吹塑试剂和聚亚甲基二苯基二异氰酸酯作为异氰酸酯源用于聚氨酯合成。通过红外光谱(FTIR)表征所得泡沫,以控制交联反应,扫描电子显微镜(SEM)来评估形态学结构和热重分析(TGA)和导热率,以评估热降解行为和隔热性特性。

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