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Phenolic Resin Foam Composites Reinforced by Acetylated Poplar Fiber with High Mechanical Properties Low Pulverization Ratio and Good Thermal Insulation and Flame Retardant Performance

机译:乙酰化杨木纤维增强的酚醛树脂泡沫复合材料具有较高的机械性能较低的粉化比良好的隔热和阻燃性能

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摘要

Phenolic foam composites (PFs) are of substantial interest due to their uniform closed-cell structure, low thermal conductivity, and good thermal insulation performance. However, their disadvantages of a high pulverization rate and poor mechanical properties restrict their application in building exterior insulation. Therefore, the toughening of these composites is necessary. In this paper, poplar fiber was treated with an acetylation reagent, and the acetylated fiber was used to prepare modified phenolic foams (FTPFs); this successfully solved the phenomenon of the destruction of the foam structure due to the agglomeration of poplar fiber in the resin substrate. The foam composites were comprehensively evaluated via the characterization of their chemical structures, surface morphologies, mechanical properties, thermal conductivities, and flame retardant properties. It was found that the compressive strength and compressive modulus of FTPF-5% respectively increased by 28.5% and 37.9% as compared with those of PF. The pulverization ratio was reduced by 32.3%, and the thermal insulation performance and flame retardant performance (LOI) were improved. Compared with other toughening methods for phenolic foam composites, the phenolic foam composites modified with surface-compatibilized poplar fiber offer a novel strategy for the value-added utilization of woody fiber, and improve the toughness and industrial viability of phenolic foam.
机译:酚醛泡沫复合材料(PFs)由于其均匀的闭孔结构,低导热性和良好的隔热性能而备受关注。然而,它们的高粉碎率和较差的机械性能的缺点限制了它们在建筑物外墙保温中的应用。因此,这些复合材料的增韧是必要的。本文用杨木纤维用乙酰化试剂处理,并用乙酰化纤维制备改性酚醛泡沫塑料(FTPFs)。这成功地解决了由于杨木纤维在树脂基材中结块而导致泡沫结构破坏的现象。通过表征其化学结构,表面形态,机械性能,热导率和阻燃性能,对泡沫复合材料进行了全面评估。发现FTPF-5%的抗压强度和压缩模量与PF相比分别提高了28.5%和37.9%。粉碎率降低了32.3%,隔热性能和阻燃性能(LOI)得到改善。与酚醛泡沫复合材料的其他增韧方法相比,用表面相容性杨木纤维改性的酚醛泡沫复合材料为木质纤维的增值利用提供了一种新的策略,并提高了酚醛泡沫的韧性和工业可行性。

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