主管:中华人民共和国应急管理部
主办:应急管理部天津消防研究所
ISSN 1009-0029  CN 12-1311/TU

消防科学与技术 ›› 2026, Vol. 45 ›› Issue (7): 53-61.

• • 上一篇    下一篇

纳米颗粒和聚合物复配体系对无氟泡沫流变行为的影响

李龙1, 邢真强2,3,4, 张福成1, 王琳淇2,3, 王宝富1   

  1. (1.国能神东煤炭集团有限责任公司,内蒙古 鄂尔多斯 017219; 2.中煤科工集团沈阳研究院有限公司,辽宁 抚顺 113122; 3.煤矿灾害防控全国重点实验室,辽宁 抚顺 113122; 4.安徽理工大学 安全科学与工程学院,安徽 淮南 232001)
  • 收稿日期:2026-04-08 修回日期:2026-06-01 出版日期:2026-07-15 发布日期:2026-07-15
  • 作者简介:李龙,国能神东煤炭集团有限责任公司,助理工程师,主要从事矿井“一通三防”技术研究,内蒙古自治区鄂尔多斯市伊金霍洛旗乌兰木伦镇上湾金龙路北,017219,15829337057@163.com。

Effect of a nanoparticle and polymer composite system on the rheological behavior of fluorine-free foams

Li Long1, Xing Zhenqiang2,3,4, Zhang Fucheng1, Wang Linqi2,3, Wang Baofu1   

  1. (1. Guoneng Shendong Coal Group Co., Ltd., Ordos Inner Mongolia 017219, China; 2. CCTEG Shenyang Research Institute Co., Ltd., Fushun Liaoning 113122, China; 3. State Key Laboratory of Coal Mine Disaster Prevention and Control, Fushun Liaoning 113122, China; 4. School of Safety Science and Engineering, Anhui University of Science and Technology, Huainan Anhui 232001, China)
  • Received:2026-04-08 Revised:2026-06-01 Online:2026-07-15 Published:2026-07-15

摘要: 为开发高稳定性无氟泡沫灭火剂,本文以非离子有机硅表面活性剂(LS-408L)与两性离子碳氢表面活性剂十二烷基二甲基甜菜碱(BS-12)为基础体系,引入非离子水溶性聚合物瓜尔胶(GG,0.2%)与亲水性气相二氧化硅(SiO₂,1.5%)纳米颗粒作为稳泡改性剂,构建4组无氟泡沫混合体系。系统表征了各体系混合液的表面张力和电导率,分析了泡沫稳定性,并重点探究了25~75 ℃热作用下泡沫混合液及泡沫相的流变行为演变规律。结果表明:单一GG或SiO₂的引入均使LS-408L/BS-12体系的表面张力与电导率升高,而二者复配时表现为表面张力降低、电导率持续升高的协同效应;GG和 SiO₂可延缓泡沫析液进程,二者复配表现出最优稳泡效能;4组泡沫混合液均表现出典型的剪切稀化非牛顿流体特性,含SiO₂的体系呈现黏弹性固体特征并有较高的屈服极限,无SiO₂体系则表现为黏弹性流体;改性无氟泡沫在黏弹性模量交叉点前呈弹性响应,交叉点后转为黏性响应,温度升高会使泡沫黏弹性模量整体降低,复配体系仍保持最优的热流变稳定性,在最高温度75 ℃下仍保持良好的抗剪切能力,在线性黏弹区内,A-3#的复变模量为16.6 Pa,是4组体系中最高的。明确了GG与SiO₂复配对无氟泡沫热流变行为的协同调控机制,以较低的SiO₂浓度实现更好的稳泡能力,为高稳定性无氟泡沫灭火剂组分优化与配方设计提供试验依据与理论支撑。

关键词: 纳米颗粒, 聚合物, 表面活性剂, 泡沫流变性, 无氟泡沫

Abstract: To develop highly stable fluorine-free foam extinguishing agents, this study used a base system consisting of a nonionic organosilicon surfactant (LS-408L) and a zwitterionic hydrocarbon surfactant, dodecyl dimethyl betaine (BS-12). Nonionic water-soluble polymer guar gum (GG, 0.2%) and hydrophilic fumed silica (SiO₂, 1.5%) nanoparticles were introduced as foam-stabilizing modifiers to construct four fluorine-free foam mixed systems. The surface tension and electrical conductivity of each mixed solution were systematically characterized, foam stability was analyzed, and the evolution of the rheological behavior of both the foam mixed liquids and the foam phase under thermal action from 25 ℃ to 75 ℃ was thoroughly investigated. The results showed that the addition of either GG or SiO₂ alone increased the surface tension and electrical conductivity of the LS-408L/BS-12 system, whereas their combination exhibited a synergistic effect, characterized by reduced surface tension and a continuously increased electrical conductivity. Both GG and SiO₂ delayed the foam drainage process, and their combination achieved the best foam-stabilizing performance. All four foam mixed liquids exhibited typical shear-thinning non-Newtonian fluid behavior. The systems containing SiO₂ displayed viscoelastic solid-like characteristics with a relatively high yield stress, whereas the SiO₂-free system behaved as a viscoelastic fluid. The modified fluorine-free foams showed an elastic response before the crossover point of the viscoelastic moduli and transitioned to a viscous response after the crossover point. Increasing the temperature generally reduced the viscoelastic moduli of the foams; nevertheless, the composite system maintained the best thermal rheological stability and retained good shear resistance even at the maximum temperature of 75 °C. Within the linear viscoelastic region, the complex modulus of system A-3# was 16.60 Pa, the highest among the four systems. This study elucidates the synergistic regulation mechanism of the GG and SiO₂ combination on the thermal rheological behavior of fluorine-free foam, achieving superior foam-stabilizing ability with a relatively low SiO₂ concentration. These findings provide experimental evidence and theoretical support for component optimization and formulation design of highly stable fluorine-free foam extinguishing agents.

Key words: nanoparticles, polymers, surfactants, foam rheology, fluoride-free foams