Lu Weimiao, Ye Jiewang, Zhu Lianghai, Jin Zhenfu, Matsumoto Yuji
School of Engineering, Zhejiang A&F University, Hangzhou 311300, China.
Graduate School of Agricultural and Life Sciences, The University of Tokyo, 1-1-1 Yaoyi, Bunkyo-ku, Tokyo 113-8657, Japan.
Polymers (Basel). 2021 May 14;13(10):1585. doi: 10.3390/polym13101585.
Intumescent flame retardants (IFR) have been widely used to improve flame retardancy of rigid polyurethane (RPU) foams and the most commonly used char forming agent is pentaerythritol (PER). Lignosulfonate (LS) is a natural macromolecule with substantial aromatic structures and abundant hydroxyl groups, and carbon content higher than PER. The flame retardancy and its mechanism of LS as char forming agent instead of PER in IFR formulation were investigated by scanning electron microscopy, thermogravimetric analysis, limiting oxygen index testing and cone calorimeter test. The results showed LS as a char forming agent did not increase the density of RPU/LS foams. LOI value and char residue of RPU/LS foam were higher than RPU/PER and the mass loss of RPU/LS foam decreased 18%, suggesting enhanced thermal stability. CCT results showed LS as a char forming agent in IFR formulation effectively enhanced the flame retardancy of RPU foams with respect to PER. The flame retardancy mechanism showed RPU/LS foam presented a continuous and relatively compact char layer, acting as the effect of the flame retardant and heat insulation between gaseous and condensed phases. The efficiency of different LS ratio in IFR formulation as char forming agent was different, and the best flame retardancy and thermal stability was obtained at RPU/LS1.
膨胀型阻燃剂(IFR)已被广泛用于提高硬质聚氨酯(RPU)泡沫的阻燃性,最常用的成炭剂是季戊四醇(PER)。木质素磺酸盐(LS)是一种具有大量芳香结构和丰富羟基的天然大分子,且碳含量高于PER。通过扫描电子显微镜、热重分析、极限氧指数测试和锥形量热仪测试,研究了LS作为成炭剂替代IFR配方中的PER时的阻燃性及其机理。结果表明,LS作为成炭剂不会增加RPU/LS泡沫的密度。RPU/LS泡沫的极限氧指数值和残炭率高于RPU/PER,且RPU/LS泡沫的质量损失降低了18%,表明其热稳定性增强。锥形量热仪测试结果表明,LS作为IFR配方中的成炭剂相对于PER有效地提高了RPU泡沫的阻燃性。阻燃机理表明,RPU/LS泡沫呈现出连续且相对致密的炭层,起到了气相和凝聚相之间的阻燃和隔热作用。IFR配方中不同LS比例作为成炭剂的效率不同,在RPU/LS1时获得了最佳的阻燃性和热稳定性。