Innovative flame-retardant systems for rigid polyurethane foam: Synergistic effects of nitrogen and phosphorus polyols

IF 5.1 3区 工程技术 Q1 CHEMISTRY, APPLIED Reactive & Functional Polymers Pub Date : 2025-06-01 Epub Date: 2025-02-26 DOI:10.1016/j.reactfunctpolym.2025.106215
Xiaoyan Sun , Lisha Deng , Jiankun Fu , Ziheng Zhao , Chunfan Xu , Min Hao , Madeleine Bussemaker , Juncheng Jiang , Lian X. Liu , Ru Zhou
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Abstract

Rigid polyurethane foam (RPUF) is widely used for building insulation. However, RPUF has significant safety concerns due to its flammability. It ignites easily, burns rapidly, and releases substantial heat and toxic smoke in a short time. Researchers have explored various additive flame retardants as a solution. However, these additives often weaken the mechanical strength of RPUF, leading to unsatisfactory performance. In this study, we investigated for the first time the application of nitrogen-containing polyols synthesized from the reaction of melamine and formaldehyde, and phosphorus-containing polyols produced from the reaction of trimethyl phosphate and 1,1,1-tris(hydroxymethyl)ethane in flame-retardant RPUF. These polyols were used in a reactive flame-retardant strategy for RPUF. This approach improved the effectiveness of the flame retardants. It also minimized the negative impact on the mechanical properties of RPUF. We combined nitrogen- and phosphorus-containing flame-retardant polyols in a 2:1 ratio. This combination significantly improved flame retardancy and thermal stability. The RPUF composites achieved a limiting oxygen index of 27.2 % and a UL-94 V-0 rating. The composites also showed a significant reduction in total heat release and total smoke production by 55.9 % and 65.8 %, respectively, compared to pure RPUF. These improvements are due to a dense residual carbon layer formed during combustion. This layer shields the RPUF matrix from heat and oxygen. Additionally, the composites reduce the concentration of combustible gases in the gas phase, lowering the overall temperature.

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硬质聚氨酯泡沫的创新阻燃系统:氮和磷多元醇的协同效应
硬质聚氨酯泡沫(RPUF)广泛应用于建筑保温材料。然而,由于其可燃性,RPUF存在重大的安全问题。它很容易点燃,燃烧迅速,并在短时间内释放大量热量和有毒烟雾。研究人员已经探索了各种添加剂阻燃剂作为解决方案。然而,这些添加剂往往会削弱RPUF的机械强度,导致性能不理想。本文首次研究了由三聚氰胺与甲醛反应合成的含氮多元醇和由磷酸三甲酯与1,1,1-三(羟甲基)乙烷反应合成的含磷多元醇在阻燃剂RPUF中的应用。这些多元醇用于RPUF的反应性阻燃策略。这种方法提高了阻燃剂的有效性。它还将对RPUF力学性能的负面影响降至最低。我们以2:1的比例组合含氮和含磷阻燃多元醇。这种组合显著提高了阻燃性和热稳定性。RPUF复合材料的极限氧指数为27.2%,额定UL-94 V-0。与纯RPUF相比,复合材料的总放热量和总烟雾产量分别显著减少55.9%和65.8%。这些改进是由于在燃烧过程中形成了致密的残余碳层。这一层保护RPUF基质不受热量和氧气的影响。此外,复合材料降低了气相中可燃气体的浓度,降低了整体温度。
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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文献相关原料
公司名称
产品信息
麦克林
polyethylene polyphenol polyisocyanate
麦克林
2-methyl-1,3-propanediol (MPD)
麦克林
1,1,1-tris(hydroxymethyl)ethane (TME)
麦克林
trimethyl phosphate (TMP)
麦克林
dibutyltin dilaurate
麦克林
Triethylene diamine
阿拉丁
Formaldehyde
阿拉丁
Melamine
来源期刊
Reactive & Functional Polymers
Reactive & Functional Polymers 工程技术-高分子科学
CiteScore
8.90
自引率
5.90%
发文量
259
审稿时长
27 days
期刊介绍: Reactive & Functional Polymers provides a forum to disseminate original ideas, concepts and developments in the science and technology of polymers with functional groups, which impart specific chemical reactivity or physical, chemical, structural, biological, and pharmacological functionality. The scope covers organic polymers, acting for instance as reagents, catalysts, templates, ion-exchangers, selective sorbents, chelating or antimicrobial agents, drug carriers, sensors, membranes, and hydrogels. This also includes reactive cross-linkable prepolymers and high-performance thermosetting polymers, natural or degradable polymers, conducting polymers, and porous polymers. Original research articles must contain thorough molecular and material characterization data on synthesis of the above polymers in combination with their applications. Applications include but are not limited to catalysis, water or effluent treatment, separations and recovery, electronics and information storage, energy conversion, encapsulation, or adhesion.
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