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生产用于热塑性聚氨酯的聚甘油聚酯多元醇:生物柴油生产副产物甘油的一种新型增值利用。

Producing polyglycerol polyester polyol for thermoplastic polyurethane application: A novel valorization of glycerol, a by-product of biodiesel production.

作者信息

Calderon Mike Jhun P, Dumancas Gerard G, Gutierrez Carlo S, Lubguban Alona A, Alguno Arnold C, Malaluan Roberto M, Lubguban Arnold A

机构信息

Center for Sustainable Polymers, Mindanao State University - Iligan Institute of Technology, Iligan City, 9200, Philippines.

Department of Materials and Resources Engineering and Technology, Graduate School of Engineering, Mindanao State University - Iligan Institute of Technology, Iligan City, 9200, Philippines.

出版信息

Heliyon. 2023 Aug 25;9(9):e19491. doi: 10.1016/j.heliyon.2023.e19491. eCollection 2023 Sep.

Abstract

The production of biodiesel generates glycerol as a by-product that needs valorization. Glycerol, when converted to polyglycerol, is a potential polyol for bio-based thermoplastic polyurethane (TPU) production. In this study, a novel polyglycerol polyester polyol (PPP) was developed from refined glycerol and coconut oil-based polyester polyol. Glycerol was first converted to glycerol acetate and then polymerized with coconut oil-based polyester polyol (CPP) as secondary polyol and phthalic anhydride. The resulting PPP polymerized at 220 °C and OH:COOH molar ratio of 2.5 exhibited an OH number of <100 mg KOH·g sample, an acid number of <10 mg KOH·g sample, and a molecular weight (MW) of 3697 g mol meeting the polyol requirement properties for TPU (Handlin et al., 2001; Parcheta et al., 2020) [1-2]. Fourier-transform infrared (FTIR) spectroscopic characterization determined that higher reaction temperatures increase the polymerization rate and decrease the OH and acid numbers. Further, higher OH:COOH molar ratios decrease the polymerization rate and acid number, and increase the OH number. Gel permeation chromatography determined the molecular weight of PPP and suggested two distinct molecular structures which differ only in the number of moles of CPP in the structure. A differential scanning calorimetric (DSC) experiment on a sample of PPP-based polyurethane revealed that it was able to melt and remelt after 3 heating cycles which demonstrates its thermoplastic ability. The novel PPP derived from the glycerol by-product of biodiesel industries can potentially replace petroleum-derived polyols for TPU production.

摘要

生物柴油的生产会产生需要增值利用的副产物甘油。甘油转化为聚甘油后,是用于生物基热塑性聚氨酯(TPU)生产的潜在多元醇。在本研究中,由精制甘油和椰子油基聚酯多元醇开发了一种新型聚甘油聚酯多元醇(PPP)。甘油首先转化为乙酸甘油酯,然后与椰子油基聚酯多元醇(CPP)作为二级多元醇和邻苯二甲酸酐聚合。所得的PPP在220℃聚合,OH:COOH摩尔比为2.5时,羟值<100mg KOH·g样品,酸值<10mg KOH·g样品,分子量(MW)为3697g·mol,满足TPU的多元醇所需性能(汉德林等人,2001年;帕尔切塔等人,2020年)[1 - 2]。傅里叶变换红外(FTIR)光谱表征确定,较高的反应温度会提高聚合速率并降低羟值和酸值。此外,较高的OH:COOH摩尔比会降低聚合速率和酸值,并提高羟值。凝胶渗透色谱法测定了PPP的分子量,并表明存在两种不同的分子结构,它们仅在结构中CPP的摩尔数上有所不同。对基于PPP的聚氨酯样品进行的差示扫描量热(DSC)实验表明,它在3次加热循环后能够熔化和再熔化,这证明了其热塑性能力。源自生物柴油行业甘油副产物的新型PPP有可能替代石油衍生的多元醇用于TPU生产。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8bd7/10472058/f30a976fea19/gr1.jpg

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