Dorieh Ali, Ayrilmis Nadir, Farajollah Pour Mohammad, Ghafari Movahed Sogand, Valizadeh Kiamahalleh Mohammad, Shahavi Mohammad Hassan, Hatefnia Hamid, Mehdinia Meysam
Research and Development Division, Arian Saeed Industrial Group, Sari, Iran.
Department of Wood Mechanics and Technology, Forestry Faculty, Istanbul University-Cerrahpasa, Bahcekoy, Sariyer, 34473 Istanbul, Turkey.
Int J Biol Macromol. 2022 Dec 1;222(Pt B):1888-1907. doi: 10.1016/j.ijbiomac.2022.09.279. Epub 2022 Oct 5.
In recent years, growing consideration of the concepts of ecological sustainability, environmentally friendly, recyclability, non-toxicity and biodegradability towards a green environment, have led scientists to focus on the utilization of natural fibers as green reinforcing agents for improving thermal, physical, and mechanical characteristics of composites. In this way, cellulose and lignin (nano) materials are receiving global attention due to their unique and potentially useful features, containing abundance, renewability, low cost, excellent physical-mechanical properties, environmental friendliness, and low weight. Therefore, this research, addressed a survey of the literature on extending the performance of phenol-formaldehyde (phenolic) composites reinforced by cellulose and lignin nano materials that were explored in the last decade. Physical, mechanical behavior and thermal stability of the phenolic composites were comprehensively examined. Indeed, different types of phenolic composites modified with nanocellulose and nanolignin have been made using various advanced synthesis processes. The results were unanimous and highlighted the remarkable effect of nanocellulose and nanolignin on improving the overall performance of the fabricated composites.
近年来,出于对生态可持续性、环境友好、可回收性、无毒性以及对绿色环境的生物降解性等概念的日益关注,科学家们开始专注于利用天然纤维作为绿色增强剂,以改善复合材料的热性能、物理性能和机械性能。通过这种方式,纤维素和木质素(纳米)材料因其独特且潜在有用的特性而受到全球关注,这些特性包括丰富性、可再生性、低成本、优异的物理机械性能、环境友好性以及低重量。因此,本研究对过去十年中探索的纤维素和木质素纳米材料增强酚醛复合材料的性能扩展相关文献进行了综述。对酚醛复合材料的物理、力学行为和热稳定性进行了全面研究。事实上,使用各种先进的合成工艺制备了不同类型的用纳米纤维素和纳米木质素改性的酚醛复合材料。结果一致,并突出了纳米纤维素和纳米木质素对提高所制备复合材料整体性能的显著作用。