Bo Guangxu, Xu Xiaoling, Tian Xiaoke, Yan Jinyong, Su Xingjian, Yan Yunjun
Key Laboratory of Molecular Biophysics of the Ministry of Education, College of Life Science and Technology, Huazhong University of Science and Technology, Wuhan 430074, China.
Polymers (Basel). 2022 Sep 2;14(17):3630. doi: 10.3390/polym14173630.
Rigid polyurethane foams (RPUFs) as building insulation materials quickly burn and release a lot of heat, smoke, and carbon monoxide, and cause human safety risk and severe environmental pollution. To mitigate these disadvantages, MOF/MWCNTs were fabricated via mixing Cu ions' partly substituted framework of ZIF-67 and MWCNTs, and further calcinated MOF/MWCNTs (C-MOF/MWCTs) was newly generated by calcinating MOF/MWCNTs in air. Then, MOF/MWCNTs and C-MOF/MWCNTs were respectively employed together with a phosphorus-nitrogen-containing reactive flame retardant (TBPBP) to prepare renewable bio-based rigid polyurethane foam, including RPUF-T/MOF/MWCNTs 2 and RPUF-T/C-MOF/MWCNTs 2. The characterization results showed that RPUF-T/C-MOF/MWCNTs 2 had better performance than RPUF-T/MOF/MWCNTs 2 and neat RPUF. Compared to neat RPUF, the compressive strength, limiting oxygen index value, and the mass char residue in cone calorimetry test of RPUF-T/C-MOF/MWCNTs 2, respectively, were increased by 105.93%, 46.35%, and 347.32%; meanwhile, the total heat release rate, total smoke production, total carbon monoxide product, and total carbon dioxide product were reduced by 47.97%, 50.46%, 41.38%, 43.37%, respectively. This study provides a referable method for preparing RPUFs with good physical properties, fire, and smoke safety, which is favorable for human safety and environmental protection as new building insulation materials.
硬质聚氨酯泡沫(RPUFs)作为建筑保温材料,燃烧迅速,会释放大量热量、烟雾和一氧化碳,造成人类安全风险和严重的环境污染。为了缓解这些缺点,通过将部分取代ZIF-67框架的铜离子与多壁碳纳米管(MWCNTs)混合制备了金属有机框架/多壁碳纳米管(MOF/MWCNTs),并通过在空气中煅烧MOF/MWCNTs新生成了煅烧后的MOF/MWCNTs(C-MOF/MWCTs)。然后,将MOF/MWCNTs和C-MOF/MWCNTs分别与含磷氮的反应型阻燃剂(TBPBP)一起用于制备可再生生物基硬质聚氨酯泡沫,包括RPUF-T/MOF/MWCNTs 2和RPUF-T/C-MOF/MWCNTs 2。表征结果表明,RPUF-T/C-MOF/MWCNTs 2的性能优于RPUF-T/MOF/MWCNTs 2和纯RPUF。与纯RPUF相比,RPUF-T/C-MOF/MWCNTs 2在锥形量热试验中的抗压强度、极限氧指数值和质量残炭分别提高了105.93%、46.35%和347.32%;同时,总热释放速率、总产烟量、总一氧化碳产量和总二氧化碳产量分别降低了47.97%、50.46%、41.38%、43.37%。本研究为制备具有良好物理性能、防火和防烟安全性的RPUFs提供了一种可参考的方法,作为新型建筑保温材料有利于人类安全和环境保护。