Wang Ruixiang, Zhang Hongliang, Liu Jingshuang, Wei Tongjun
Key Laboratory for Special Area Highway Engineering of Ministry of Education, Chang'an University, Xi'an 710064, China.
Guangxi Pingna Expressway Co., Ltd., Nanning 530022, China.
Polymers (Basel). 2025 Mar 20;17(6):820. doi: 10.3390/polym17060820.
Recycling and reutilization of waste PET through alcoholysis has been a prominent focus of current research. However, the alcoholysis process is reversible, leading to the generation of oligomeric waste byproducts. To further utilize these wastes, this paper processed oligomeric waste derived from various alcoholysis systems to synthesize unsaturated polyester resins (UPRs). The fundamental characteristics, mechanical properties, and curing processes of synthesized UPRs were analyzed based on GPC, FTIR, TG, tensile testing, DMA, and DSC tests. The results indicate that wastes were successfully synthesized to UPRs. The UPRs synthesized from ethylene glycol (EG) and diethylene glycol (DEG) possess more complex compositions; among these, the UPR synthesized from EG exhibited higher thermal stability, whereas the UPR synthesized from DEG showed a broader molecular weight distribution and a lower glass transition temperature (). In addition, the UPR synthesized from DEG exhibited a remarkably high elongation at break (>180%), potentially attributed to its long molecular chains. Regarding curing characteristics, UPRs obtained from DEG and propylene glycol (PG) exhibited slower curing rates and demanded higher activation energies. Moreover, the curing processes of UPRs could be well described by the Sesták-Berggren autocatalytic model.
通过醇解对废弃聚对苯二甲酸乙二酯进行回收再利用一直是当前研究的一个突出重点。然而,醇解过程是可逆的,会导致低聚物副产物的产生。为了进一步利用这些废物,本文对源自各种醇解系统的低聚物废物进行处理,以合成不饱和聚酯树脂(UPR)。基于凝胶渗透色谱(GPC)、傅里叶变换红外光谱(FTIR)、热重分析(TG)、拉伸试验、动态热机械分析(DMA)和差示扫描量热法(DSC)测试,对合成的UPR的基本特性、机械性能和固化过程进行了分析。结果表明,废物成功合成了UPR。由乙二醇(EG)和二甘醇(DEG)合成的UPR具有更复杂的组成;其中,由EG合成的UPR表现出更高的热稳定性,而由DEG合成的UPR显示出更宽的分子量分布和更低的玻璃化转变温度()。此外,由DEG合成的UPR表现出非常高的断裂伸长率(>180%),这可能归因于其长分子链。关于固化特性,由DEG和丙二醇(PG)获得的UPR表现出较慢的固化速率,并且需要更高的活化能。此外,UPR的固化过程可以通过塞斯塔克 - 伯格伦自催化模型很好地描述。