Xie Haiwei, Jia Yixuan, Liu Weidong, Huang Zhipeng, Wang Hanyu, Li Zuzhong, Zhu Chunsheng
School of Traffic & Transportation Engineering, Changsha University of Science & Technology, Changsha 410114, China.
School of Traffic & Logistics Engineering, Xinjiang Agricultural University, Urumqi 830052, China.
Polymers (Basel). 2024 May 25;16(11):1504. doi: 10.3390/polym16111504.
This work aimed to investigate the effects of aging on the microstructures and rheological properties of modified asphalt with a GO/SBS composite, since the styrene-butadiene-styrene block copolymer is potentially compatible with graphene oxide (GO). The GO/SBS composites, which were used as a kind of modifier, were prepared via the solution-blending method. GO/SBS composites with varying GO contents were employed to prepare the GO/SBS-compound-modified asphalt (GO/SBS-MA). Then, the GO/SBS-MA underwent PAV (pressure aging vessel) or UV (ultraviolet) aging tests to simulate different aging circumstances. The microstructures of the asphalt binders were studied using FTIR (Fourier-transform infrared spectroscopy) and AFM (atomic force microscope) tests. Moreover, DSR (dynamic shear rheometer) and BBR (bending beam rheometer) experiments were carried out to investigate the rheological properties of the GO/SBS-MA. The results showed that the addition of GO improved the high-temperature stability of the asphalt binder while slightly impairing its performance at low temperatures. GO restrained the formation of carbonyl and sulfoxide groups as well as the breakdown of C=C bonds in the polybutadiene (PB) segment, promoting the anti-aging performance of GO/SBS-MA. Furthermore, the interactions between the GO/SBS and the asphalt binder resulted in the formation of needle-like aggregates, enhancing the stability of the asphalt binder. The asphalt binders with a higher content of graphene oxide (GO) exhibited not only a better high-temperature performance, but also a better aging resistance. It was concluded that the macroscopic properties and microstructures were significantly affected by GO, and a moderate increase in the amount of GO could contribute to a better aging resistance for GO/SBS-MA.
由于苯乙烯-丁二烯-苯乙烯嵌段共聚物与氧化石墨烯(GO)具有潜在的相容性,本研究旨在探究老化对GO/SBS复合改性沥青微观结构和流变性能的影响。采用溶液共混法制备了作为一种改性剂的GO/SBS复合材料。使用不同GO含量的GO/SBS复合材料制备了GO/SBS复合改性沥青(GO/SBS-MA)。然后,对GO/SBS-MA进行压力老化容器(PAV)或紫外线(UV)老化试验,以模拟不同的老化环境。通过傅里叶变换红外光谱(FTIR)和原子力显微镜(AFM)试验研究了沥青结合料的微观结构。此外,还进行了动态剪切流变仪(DSR)和弯曲梁流变仪(BBR)试验,以研究GO/SBS-MA的流变性能。结果表明,GO的加入提高了沥青结合料的高温稳定性,但略微损害了其低温性能。GO抑制了聚丁二烯(PB)链段中羰基和亚砜基团的形成以及C=C键的断裂,提高了GO/SBS-MA的抗老化性能。此外,GO/SBS与沥青结合料之间的相互作用导致形成针状聚集体,增强了沥青结合料的稳定性。氧化石墨烯(GO)含量较高的沥青结合料不仅具有更好的高温性能,而且具有更好的抗老化性能。研究得出结论,GO对宏观性能和微观结构有显著影响,适度增加GO的用量有助于提高GO/SBS-MA的抗老化性能。