Huang Jinrui, Fu Pan, Li Wenbin, Xiao Laihui, Chen Jie, Nie Xiaoan
Institute of Ecological Conservation and Restoration, Chinese Academy of Forestry Beijing 100091 China
Key Laboratory of Biomass Energy and Material, Jiangsu Province, Jiangsu Co-Innovation Center of Efficient Processing and Utilization of Forest Resources, Key Laboratory of Chemical Engineering of Forest Products, National Forestry and Grassland Administration, National Engineering Research Center for Low-Carbon Processing and Utilization of Forest Biomass, Institute of Chemical Industry of Forest Products, Chinese Academy of Forestry Nanjing 210042 Jiangsu Province China
RSC Adv. 2022 Aug 16;12(36):23048-23056. doi: 10.1039/d2ra04206a.
Plant oil-based epoxy resins are of great interest due to their ecological and economic necessity. Previous studies suggested that the crosslinking density had a considerable influence on the mechanical and thermal properties of plant oil-based epoxy resins. However, so far, the relationship between the crosslinking density and the thermo-mechanical properties of plant oil-based epoxy resins is not clear. To address this issue, model tung oil-based epoxy resins with different crosslinking densities were fabricated to investigate the influence of crosslinking density on the mechanical and thermal properties of tung oil-based epoxy resins. Results show that the tensile strength, Young's modulus, and glass transition temperature are linearly increased with increasing crosslinking density. The elongation at break and tensile toughness show nonlinear downward trends as the crosslinking density increases. The elongation at break decreases gently at first, then dramatically, and finally slowly as the crosslinking density increases. The tensile toughness declines sharply at first and then slowly with increasing crosslinking density. The relationship between the thermostability and the crosslinking density is complex, because the thermostability is determined by both the molecular structure of the curing system and the crosslinking density. These results provide some information for designing plant oil-based epoxy resins according to the requirements of their applications.
由于生态和经济方面的必要性,植物油基环氧树脂备受关注。先前的研究表明,交联密度对植物油基环氧树脂的机械性能和热性能有相当大的影响。然而,到目前为止,植物油基环氧树脂的交联密度与热机械性能之间的关系尚不清楚。为了解决这个问题,制备了具有不同交联密度的模型桐油基环氧树脂,以研究交联密度对桐油基环氧树脂机械性能和热性能的影响。结果表明,拉伸强度、杨氏模量和玻璃化转变温度随交联密度的增加呈线性增加。断裂伸长率和拉伸韧性随着交联密度的增加呈现非线性下降趋势。随着交联密度的增加,断裂伸长率起初缓慢下降,然后急剧下降,最后又缓慢下降。随着交联密度的增加,拉伸韧性起初急剧下降,然后缓慢下降。热稳定性与交联密度之间的关系很复杂,因为热稳定性由固化体系的分子结构和交联密度共同决定。这些结果为根据植物油基环氧树脂的应用要求进行设计提供了一些信息。