State Key Laboratory of Fire Science, University of Science and Technology of China, Hefei 230026, China.
State Key Laboratory of Fire Science, University of Science and Technology of China, Hefei 230026, China.
Int J Biol Macromol. 2024 Nov;280(Pt 4):136203. doi: 10.1016/j.ijbiomac.2024.136203. Epub 2024 Sep 30.
In this work, we developed soft and highly stable perfluorocarbon-free foams based on cellulose nanofibres (CNFs), cellulose nanocrystals (CNCs) and alkyl polyglycoside (APG). Neither the CNCs nor the CNFs can effectively stabilise the APG foam, which is reflected in the spontaneous degradation of the foam. Interestingly, blending these two nanocelluloses and foaming resulted in an ultrastable foam. The reflective optical interference technique was used to visualise liquid flow in the liquid film, and the results showed that the foam film with a thickness of only a few tens of nanometres gained excellent mechanical stability by tuning the assembly of CNCs and CNFs at the air-liquid interface. Moreover, the interfibril interactions at the Plateau borders reduce the bubble coarsening rate and drainage rate. In pool fire extinguishing tests, increasing the total concentration of CNCs and CNFs improved the foam stability, but increasing the viscosity led to a decrease in the foam spreading rate. Thus, a formulation with 0.4 % nanocellulose has poorer firefighting performance than a formulation with 0.15 % nanocellulose. When the ratios of CNCs and CNFs are properly controlled, the burnback performance of perfluorocarbon-free foam is better than that of state-of-the-art fluorinated AFFFs for n-heptane pool fires. The sustainability of the firefighting process is considerably improved by switching to the nonperfluorinated liquid foam developed in this work.
在这项工作中,我们开发了基于纤维素纳米纤维(CNF)、纤维素纳米晶体(CNC)和烷基多糖苷(APG)的柔软且高度稳定的无全氟碳泡沫。CNC 和 CNF 都不能有效地稳定 APG 泡沫,这反映在泡沫的自发降解上。有趣的是,将这两种纳米纤维素混合并进行发泡处理,得到了一种超稳定的泡沫。我们采用反射式光学干涉技术来可视化液体在液膜中的流动,结果表明,泡沫膜的厚度只有几十纳米,但通过调节 CNC 和 CNF 在气液界面的组装,获得了极好的机械稳定性。此外,在节肢边界处的纤维间相互作用降低了气泡的粗化速率和排液速率。在池火灭火测试中,增加 CNC 和 CNF 的总浓度可以提高泡沫稳定性,但增加粘度会降低泡沫的扩展速率。因此,与含有 0.15%纳米纤维素的配方相比,含有 0.4%纳米纤维素的配方的灭火性能较差。当 CNC 和 CNF 的比例得到适当控制时,无全氟碳泡沫的回燃性能优于最先进的含氟 AFFF 对正庚烷池火的性能。通过转向本工作中开发的非全氟碳液体泡沫,显著提高了灭火过程的可持续性。