Cheng Peifeng, Zheng Chunmeng, Zhang Zhanming, Li Yiming, Huang Kai, Yu Dezhong, Ji Yongcheng
School of Civil Engineering and Transportation, Northeast Forestry University, Harbin 150040, China.
Jiangsu Highway Engineering Maintenance Technology Co., Ltd., Nanjing 211106, China.
Polymers (Basel). 2024 Jan 3;16(1):153. doi: 10.3390/polym16010153.
To effectively utilize waste mask materials in road engineering and minimize resource waste, the melt-blown fabric (MBF) of waste masks was utilized to modify the virgin bitumen. The preparation process of MBF-modified bitumen was investigated, and the physical and rheological properties of bitumen were measured. Subsequently, the blending mechanism during preparation and the dispersion morphology of the modifier were explored. Finally, the pavement performance of the mixture was investigated, and a radar chart analysis was performed to quantitatively assess the effects of MBF modification. Results suggested that the recommended preparation process of shear time, shear rate, and shear temperature was 170 °C, 4000 r/min, and 15 min, respectively. MBF enhanced the high-temperature stability of the binder and weakened the temperature susceptibility. The modification was primarily a physical process. No network structure and agglomeration formed in the bitumen after modification. The addition of MBF significantly improved the resistance of the asphalt mixture to a high-temperature deformation and water damage but harmed its low-temperature crack resistance. The comprehensive assessment results of 0% (f1), 1% (f2), 3% (f3), and 5% (f4) MBF to improve the properties of the mixture were in the following order: f3>f4>f2>f1, where the impact of 3% MBF was the most significant, followed by 5% and 1% MBF.
为了在道路工程中有效利用废弃口罩材料并减少资源浪费,利用废弃口罩的熔喷布(MBF)对原始沥青进行改性。研究了MBF改性沥青的制备工艺,并测量了沥青的物理和流变性能。随后,探讨了制备过程中的共混机理以及改性剂的分散形态。最后,研究了混合料的路面性能,并进行了雷达图分析以定量评估MBF改性的效果。结果表明,推荐的剪切时间、剪切速率和剪切温度的制备工艺分别为170℃、4000r/min和15min。MBF提高了粘结剂的高温稳定性并减弱了温度敏感性。改性主要是一个物理过程。改性后沥青中未形成网络结构和团聚物。MBF的加入显著提高了沥青混合料的高温抗变形能力和抗水损害能力,但损害了其低温抗裂性能。0%(f1)、1%(f2)、3%(f3)和5%(f4)MBF改善混合料性能的综合评估结果顺序如下:f3>f4>f2>f1,其中3%MBF的影响最为显著,其次是5%和1%MBF。