Zhang Xiansheng, Shi Meiwu
College of Textiles & Clothing, Qingdao University, Qingdao 266071, PR China; Research Center for Intelligent and Wearable Technology, Qingdao University, Qingdao 266071, PR China; State Key Laboratory of Bio-Fibers and Eco-Textiles, Qingdao University, Qingdao 266071, PR China.
The Military Engineering Technology Institute of System Engineering Research Institute for Academy of Military Sciences, Beijing 100082, PR China.
J Hazard Mater. 2019 Mar 5;365:9-15. doi: 10.1016/j.jhazmat.2018.10.091. Epub 2018 Nov 1.
Superior flame retardant textiles are urgently needed to address high fire and heat risks. This study provides a simple and effective strategy to improve the flame retardancy of textiles through a synergistic effect between the blended fibers, and a system with synergistic in flame retardant vinylon (FRV)/poly(m-phenylene isophthalamide) (PMIA) blended fibers is discovered. The FRV/PMIA 50/50 exhibits a much higher time to ignition and a lower peak heat release rate than those of the neat components, indicating a synergistic flame retardancy between constituents. The corresponding mechanism is explored. The residual char layer formed by blended fibers connects together and keeps the original fiber shape, which acts as a barrier slowing heat transmission and gas diffusion. Concurrently, thermal degradation analysis of blended fibers implies that both components mutually interact with each other, resulting in a higher experimental amount of incombustible gases at an early degradation stage and lower experimental amount of combustible gases at a later degradation stage as compared to the theoretical one. Therefore, the synergistic flame retardancy in FRV/PMIA blended fibers is attributed to the actions in the condensed and gas phases during pyrolysis. This work provides an effective strategy to design fireproof textiles.
迫切需要高性能的阻燃纺织品来应对高火灾和高温风险。本研究提供了一种简单有效的策略,通过混合纤维之间的协同效应来提高纺织品的阻燃性,并发现了一种具有协同阻燃性能的维纶(FRV)/聚间苯二甲酰间苯二胺(PMIA)混合纤维体系。与纯组分相比,FRV/PMIA 50/50表现出更长的着火时间和更低的峰值热释放速率,表明各组分之间具有协同阻燃性。探讨了相应的机理。混合纤维形成的残余炭层相互连接并保持原始纤维形状,起到减缓热传递和气体扩散的屏障作用。同时,混合纤维的热降解分析表明,两种组分相互作用,与理论值相比,在早期降解阶段产生的不可燃气体实验量更高,在后期降解阶段产生的可燃气体实验量更低。因此,FRV/PMIA混合纤维的协同阻燃性归因于热解过程中凝聚相和气相中的作用。这项工作为设计防火纺织品提供了一种有效策略。