Zhang Huiping, Lyu Xiongxian, Huang Zijun, Yan Ying
Guangdong Provincial Key Lab of Green Chemical Product Technology, School of Chemistry and Chemical Engineering, South China University of Technology, Guangzhou 510641, China.
Polymers (Basel). 2022 Jan 21;14(3):420. doi: 10.3390/polym14030420.
Flame-retardant water-blown rigid polyurethane foams (RPUFs) modified by ammonium polyphosphate (APP) and diethyl ethylphosphonate (DEEP) were synthesized by a one-pot free-rising method. We performed scanning electron microscopy (SEM), compression strength tests, acoustic absorption measurements and thermogravimetric analysis, as well as limited oxygen index, vertical burning and cone calorimeter tests to investigate the mechanical properties, acoustic performance and flame retardancy of the foams. SEM confirmed that the open-cell structures of the foams were successfully constructed with the introduction of a cell-opening agent. Upon using 20 php APP, the average acoustic absorption coefficient of the foam reached 0.535 in an acoustic frequency range of 1500-5000 Hz. The results of thermogravimetric analysis demonstrated that the incorporation of APP and DEEP can effectively restrain mass loss of RPUFs during pyrolysis. In particular, the compressive strength of a foam composite containing 5 php APP and 15 php DEEP increased to 188.77 kPa and the LOI value reached 24.9%. In a vertical burning test and a cone calorimeter test, the joint use of APP and DEEP endowed RPUFs with a V-0 rating and they attained a THR value of 23.43 MJ/m. Moreover, the addition of APP improved the acoustic absorption performance of the foam, verified by acoustic absorption measurements. Considering potential applications, the formulation containing 15 php APP and 5 php DEEP could be used in the preparation of a new flame-retardant acoustic absorption rigid polyurethane foam.
采用一步自由发泡法合成了由聚磷酸铵(APP)和乙基膦酸二乙酯(DEEP)改性的阻燃水发泡硬质聚氨酯泡沫(RPUF)。我们进行了扫描电子显微镜(SEM)、压缩强度测试、吸声测量和热重分析,以及极限氧指数、垂直燃烧和锥形量热仪测试,以研究泡沫的力学性能、声学性能和阻燃性。SEM证实,随着开孔剂的引入,泡沫的开孔结构得以成功构建。当使用20 php的APP时,泡沫在1500 - 5000 Hz的声频范围内平均吸声系数达到0.535。热重分析结果表明,APP和DEEP的加入能有效抑制RPUF在热解过程中的质量损失。特别是,含有5 php APP和15 php DEEP的泡沫复合材料的抗压强度提高到188.77 kPa,极限氧指数值达到24.9%。在垂直燃烧试验和锥形量热仪试验中,APP和DEEP的联合使用赋予RPUF V - 0等级,其热释放总量值达到23.43 MJ/m。此外,吸声测量验证了APP的加入改善了泡沫的吸声性能。考虑到潜在应用,含有15 php APP和5 php DEEP的配方可用于制备新型阻燃吸声硬质聚氨酯泡沫。