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由磷酸化生物多元醇合成硬质聚氨酯泡沫。

Synthesis of rigid polyurethane foams from phosphorylated biopolyols.

机构信息

Department of Chemical Engineering, Institute of Chemical and Environmental Technology, University of Castilla-La Mancha, Avda. Camilo José Cela s/n, 13071, Ciudad Real, Spain.

出版信息

Environ Sci Pollut Res Int. 2019 Feb;26(4):3174-3183. doi: 10.1007/s11356-017-9765-z. Epub 2017 Aug 18.

Abstract

Renewable resources are playing a key role on the synthesis of biodegradable polyols. Moreover, the incorporation of covalently linked additives is increasing in importance in the polyurethane (PU) market. In this work, previously epoxidized grape seed oil and methyl oleate were transformed into phosphorylated biopolyols through an acid-catalyzed ring-opening hydrolysis in the presence of HPO. The formation of phosphate polyesters was confirmed by FT-IR and P-NMR. However, the synthesis of a high-quality PU rigid foam was not possible using exclusively these polyols attending to their low hydroxyl value. In that way, different rigid PU foams were prepared from the phosphorylated biopolyols and the commercial polyol Alcupol R4520. It was observed that phosphorylated biopolyols can be incorporated up to a 57 wt.% in the PU synthesis without significant structural changes with respect to the commercial foam. Finally, thermogravimetric and EDAX analyses revealed an improvement of thermal stability by the formation of a protective phosphorocarbonaceous char layer.

摘要

可再生资源在可生物降解多元醇的合成中起着关键作用。此外,在聚氨酯(PU)市场中,共价键合添加剂的加入越来越重要。在这项工作中,先前的氧化葡萄籽油和油酸甲酯通过在 HPO 存在下的酸催化开环水解转化为磷酸化生物多元醇。通过 FT-IR 和 P-NMR 证实了磷酸聚酯的形成。然而,仅使用这些多元醇合成高质量的 PU 硬质泡沫是不可能的,因为它们的羟值较低。通过这种方式,从磷酸化生物多元醇和商业多元醇 Alcupol R4520 制备了不同的磷酸化生物多元醇硬质 PU 泡沫。观察到磷酸化生物多元醇可以在 PU 合成中加入高达 57wt.%,而与商业泡沫相比,其结构没有明显变化。最后,热重和 EDAX 分析表明,通过形成保护性的磷碳化炭层,热稳定性得到了提高。

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