De Hoyos-Martinez Pedro Luis, Mendez Sebastian Barriga, Martinez Eriz Corro, Wang De-Yi, Labidi Jalel
Chemical and Environmental Engineering Department, University of the Basque Country, Plaza Europa 1, 20018 Donostia-San Sebastián, Spain.
Chemical and Environmental Engineering Department, University of the Basque Country, Otaola Etorbidea 29, 20600 Eibar, Spain.
Polymers (Basel). 2024 Jan 16;16(2):258. doi: 10.3390/polym16020258.
In this work, biobased rigid polyurethane foams (PUFs) were developed with the aim of achieving thermal and fireproofing properties that can compete with those of the commercially available products. First, the synthesis of a biopolyol from a wood residue by means of a scaled-up process with suitable yield and reaction conditions was carried out. This biopolyol was able to substitute completely the synthetic polyols that are typically employed within a polyurethane formulation. Different formulations were developed to assess the effect of two flame retardants, namely, polyhedral oligomeric silsesquioxane (POSS) and amino polyphosphate (APP), in terms of their thermal properties and degradation and their fireproofing mechanism. The structure and the thermal degradation of the different formulations was evaluated via Fourier Transformed Infrared Spectroscopy (FTIR) and thermogravimetric analysis (TGA). Likewise, the performance of the different PUF formulations was studied and compared to that of an industrial PUF. From these results, it can be highlighted that the addition of the flame retardants into the formulation showed an improvement in the results of the UL-94 vertical burning test and the LOI. Moreover, the fireproofing performance of the biobased formulations was comparable to that of the industrial one. In addition to that, it can be remarked that the biobased formulations displayed an excellent performance as thermal insulators (0.02371-0.02149 W·m·K), which was even slightly higher than that of the industrial one.
在这项工作中,开发了生物基硬质聚氨酯泡沫(PUF),目的是获得与市售产品相媲美的热性能和防火性能。首先,通过具有合适产率和反应条件的放大工艺,从木材残渣中合成了一种生物多元醇。这种生物多元醇能够完全替代聚氨酯配方中通常使用的合成多元醇。开发了不同的配方,以评估两种阻燃剂,即多面体低聚倍半硅氧烷(POSS)和氨基多磷酸盐(APP),在热性能、降解及其防火机理方面的效果。通过傅里叶变换红外光谱(FTIR)和热重分析(TGA)对不同配方的结构和热降解进行了评估。同样,研究了不同PUF配方的性能,并与工业PUF的性能进行了比较。从这些结果可以看出,在配方中添加阻燃剂使UL-94垂直燃烧试验结果和极限氧指数(LOI)有所改善。此外,生物基配方的防火性能与工业配方相当。除此之外,可以注意到生物基配方作为隔热材料表现出优异的性能(0.02371 - 0.02149 W·m·K),甚至略高于工业配方。