Sheng Youjie, Zhang Shanwen, Ma Wenzhi, Peng Yunchuan, Ma Li, Wang Qiuhong, Hu Die
College of Safety Science and Engineering, Xi'an University of Science and Technology, 710054, China.
College of Safety Science and Engineering, Xi'an University of Science and Technology, 710054, China.
J Colloid Interface Sci. 2025 Jan;677(Pt A):378-389. doi: 10.1016/j.jcis.2024.07.230. Epub 2024 Jul 30.
Nanoparticle-stabilized foams are extremely stable, and flame retardant inorganic nanoparticles should be able to add sealing capacity of firefighting foams on flammable liquid fuels, and hence enhance fire extinguishment performance on liquid fuel fire. In practice, how do flame retardant nanoparticles resist the destructive effect of oil molecules on foam and tune foam properties?
We have prepared a nanoparticle-enhanced foam comprising of hydrocarbon surfactant, short-chain fluorocarbon surfactant, and nanoparticles. The interactions among nanoparticles and surfactant molecules were characterized by using dynamic surface tension and conductivity. Stability, rheology, and oil resistivity on liquid fuel of the nanoparticle-enhanced foam were evaluated systematically. Fire suppression effectiveness of the foams was verified based on a standard experiment.
Foam stability and oil resistivity were enhanced due to self-assembled network structures formed by jammed aggregates composed by nanoparticles and surfactants in Plateau borders and bubble films, providing structural recoverability and enhanced viscoelasticity within foam. Foams containing nano-SiO, nano-CaCO, nano-Al(OH), and nano-Mg(OH) show difference in fire extinguishment due to different ability to enhance foam properties. Foam containing nano-Al(OH) shows the strongest adaptation and could shorten fire extinguishing time by 2 times and prolong burn-back time by 2.3 times compared with commercial product.
纳米颗粒稳定的泡沫极其稳定,且阻燃无机纳米颗粒应能够增加消防泡沫对易燃液体燃料的密封能力,从而提高对液体燃料火灾的灭火性能。在实际应用中,阻燃纳米颗粒如何抵抗油分子对泡沫的破坏作用并调节泡沫性能?
我们制备了一种由碳氢表面活性剂、短链氟碳表面活性剂和纳米颗粒组成的纳米颗粒增强泡沫。通过动态表面张力和电导率表征了纳米颗粒与表面活性剂分子之间的相互作用。系统评估了纳米颗粒增强泡沫在液体燃料上的稳定性、流变学和抗油性。基于标准实验验证了泡沫的灭火效果。
由于在 Plateau 边界和气泡膜中由纳米颗粒和表面活性剂组成的堵塞聚集体形成的自组装网络结构,泡沫的稳定性和抗油性得到增强,从而在泡沫内部提供了结构可恢复性和增强的粘弹性。含有纳米 SiO、纳米 CaCO、纳米 Al(OH) 和纳米 Mg(OH) 的泡沫由于增强泡沫性能的能力不同而在灭火方面表现出差异。与商业产品相比,含有纳米 Al(OH) 的泡沫表现出最强的适应性,可将灭火时间缩短 2 倍,将复燃时间延长 2.3 倍。