Simunin M M, Voronin A S, Fadeev Yu V, Dobrosmyslov S S, Kuular A A, Shalygina T A, Shabanova K A, Chirkov D Yu, Voronina S Yu, Khartov S V
Scientific Laboratory "Smart Materials and Structures", Reshetnev Siberian State University of Science and Technology, 660037 Krasnoyarsk, Russia.
School of Engineering and Construction, Siberian Federal University, 660041 Krasnoyarsk, Russia.
Materials (Basel). 2023 Feb 4;16(4):1343. doi: 10.3390/ma16041343.
The paper describes the effect of the addition of alumina nanofibers on the mechanical properties of the epoxy resin. Alumina nanofibers functionalized with epoxypropyl functional groups are used in this work. The dependence of the mechanical characteristics on the amount of the additive, as well as the features of its distribution in the material, is investigated. In the work, nanocomposites were obtained, which are epoxy resin with aluminum oxide nanofibers. The mechanical properties of the samples were studied by bending tests and differential mechanical analysis (DMA). It has been shown that the addition of alumina nanofibers leads to an increase in ultimate flexural strength. The maximum of this increase is near the percolation threshold of alumina nanofibers in epoxy resin. With the addition of 0.2% alumina nanofibers, the ultimate flexural strength increases from 41 to 71 MPa. It is shown that after exceeding the percolation threshold of nanofibers, the ultimate strength decreases. In this case, the elastic modulus increases from 0.643 to 0.862 GPa. DMA is shown that the glass transition temperature decreases with increasing amount of the additive. This indicates a decrease in the molecular weight of the polymer. By implication, this suggests that the hardener connects the epoxypropyl functional groups on the nanofibers and the epoxy groups in the resin, and as a result of this process, the nanofibers become natural polymer chain length limiters. The data obtained from mechanical testing and differential mechanical analysis can be used to strengthen epoxy resins in polymer composite materials and molding compositions.
本文描述了添加氧化铝纳米纤维对环氧树脂力学性能的影响。本研究使用了用环氧丙基官能团官能化的氧化铝纳米纤维。研究了力学特性对添加剂用量的依赖性以及其在材料中的分布特征。在这项工作中,制备了纳米复合材料,即含有氧化铝纳米纤维的环氧树脂。通过弯曲试验和动态力学分析(DMA)研究了样品的力学性能。结果表明,添加氧化铝纳米纤维会导致极限弯曲强度增加。这种增加的最大值接近氧化铝纳米纤维在环氧树脂中的渗流阈值。添加0.2%的氧化铝纳米纤维后,极限弯曲强度从41MPa增加到71MPa。结果表明,超过纳米纤维的渗流阈值后,极限强度会降低。在这种情况下,弹性模量从0.643GPa增加到0.862GPa。DMA表明,玻璃化转变温度随着添加剂用量的增加而降低。这表明聚合物的分子量降低。由此暗示,这表明固化剂连接了纳米纤维上的环氧丙基官能团和树脂中的环氧基团,并且由于这个过程,纳米纤维成为天然聚合物链长度限制剂。从力学测试和动态力学分析获得的数据可用于增强聚合物复合材料和模塑组合物中的环氧树脂。