Flame-retarded rigid polyurethane foam in-situ conferred by a bio-based soybean oil polyol containing phosphorus compounds

IF 2.1 4区 医学 Q4 MATERIALS SCIENCE, BIOMATERIALS
Xuan Zhao, Mingyang Xu, Xinyu Xu, Yuyuan Deng
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引用次数: 0

Abstract

To reduce the dependency of human life and industrial materials on petroleum, developing renewable and environmentally friendly materials has become one of the research hotspots. In this paper, Soy-DGP was synthesized through a ring-opening reaction between epoxy soybean oil (ESO) and diethylene glycol (DG), followed by a reaction with phenylphosphonyl dichloride(PPDC). Flame-retardant polyurethane foam (RPUF-DGP) was then produced by reacting various amounts of Soy-DGP with isocyanate (p-MDI). It was observed that the addition of Soy-DGP led to a reduction in the mechanical properties due to a decrease in the apparent density of RPUF-DGP. Microscopically, as Soy-DGP was added, the bubble pore size did not change significantly, but the uniformity of the aperture size was decreased. Additionally, the limiting oxygen index (LOI) of RPUF-DGP improved from 19.2% to 22.6% upon adding 80 wt% Soy-DGP. Both the time to ignition (TTI) and time to peak heat release rate (TTP) for RPUF-DGP decreased with increasing Soy-DGP content, shortening the continuous burning time of samples. Examination of the residual carbon structure showed that higher quantities of Soy-DGP resulted in thicker carbon layers on the surface of RPUF-DGP, along with bead-like phosphoric acid formation within the system, which delayed degradation.
阻燃硬质聚氨酯泡沫原位授予一种生物基大豆油多元醇含磷化合物
为减少人类生活和工业材料对石油的依赖,开发可再生环保材料已成为研究热点之一。本文以环氧大豆油(ESO)和二甘醇(DG)为原料,通过开环反应,再与二氯苯膦酰(PPDC)反应,合成了大豆- dgp。然后通过不同量的大豆- dgp与异氰酸酯(p-MDI)反应制备阻燃聚氨酯泡沫(RPUF-DGP)。观察到,由于RPUF-DGP的表观密度降低,大豆- dgp的加入导致了机械性能的降低。显微镜下,随着大豆- dgp的加入,气泡孔径变化不明显,但孔径大小的均匀性降低。添加80 wt%的大豆- dgp后,RPUF-DGP的极限氧指数(LOI)由19.2%提高到22.6%。随着大豆- dgp含量的增加,RPUF-DGP的着火时间(TTI)和峰值放热速率(TTP)均降低,样品的连续燃烧时间缩短。对残余碳结构的检测表明,高含量的大豆- dgp导致RPUF-DGP表面的碳层变厚,并在体系内形成珠状磷酸,从而延迟了降解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Cellular Polymers
Cellular Polymers 工程技术-材料科学:生物材料
CiteScore
3.10
自引率
0.00%
发文量
9
审稿时长
3 months
期刊介绍: Cellular Polymers is concerned primarily with the science of foamed materials, the technology and state of the art for processing and fabricating, the engineering techniques and principles of the machines used to produce them economically, and their applications in varied and wide ranging uses where they are making an increasingly valuable contribution. Potential problems for the industry are also covered, including fire performance of materials, CFC-replacement technology, recycling and environmental legislation. Reviews of technical and commercial advances in the manufacturing and application technologies are also included. Cellular Polymers covers these and other related topics and also pays particular attention to the ways in which the science and technology of cellular polymers is being developed throughout the world.
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