Lin Zhi, Sima Weiping, Gao Xi'an, Liu Yu, Li Jin
School of Civil Engineering, Sichuan University of Science & Engineering, Zigong 643000, China.
Polymers (Basel). 2025 Jun 9;17(12):1602. doi: 10.3390/polym17121602.
Most modified asphalts require high-temperature shearing and prolonged mixing to achieve a uniform structure, often resulting in substantial exhaust gas pollution. This study explores the utilization of polyurethane (PU) as a warm mix asphalt modifier, leveraging its favorable compatibility with asphalt at lower temperatures to mitigate emissions. To address the inherent limitations of PU-modified asphalt mixtures, namely, poor low-temperature performance and susceptibility to water damage, silane coupling agents (SCAs) are introduced to reinforce the asphalt-aggregate interfacial strength. At the microscopic level, the optimal PU content (20.8%) was determined through analysis of micro-viscosity and radial distribution functions (RDFs). SCA effects on interfacial properties were assessed using adhesion work, adhesion depth, and interfacial thermal stability. At the macroscopic level, performance metrics-including strength, high-temperature resistance, low-temperature resistance, and water stability-were evaluated against a benchmark hot mix SBS-modified asphalt mixture. The results indicate that PU-modified asphalts exhibit superior high-temperature performance and strength but slightly lower low-temperature performance and insufficient water stability. The addition of SCAs improved both low-temperature and water stability attributes, enabling the mixtures to meet specification requirements. The simulation results suggest that KH-550, which chemically reacts with isocyanate groups (-OCN) in PU, exhibits a better interfacial reinforcement effect than KH-570. Therefore, KH-550 is recommended as the preferred SCA for PU-modified asphalt mixtures in practical applications.
大多数改性沥青需要高温剪切和长时间搅拌才能形成均匀结构,这往往会导致大量废气污染。本研究探索将聚氨酯(PU)用作温拌沥青改性剂,利用其在较低温度下与沥青良好的相容性来减少排放。为解决PU改性沥青混合料固有的局限性,即低温性能差和易受水损害的问题,引入硅烷偶联剂(SCA)以增强沥青 - 集料界面强度。在微观层面,通过分析微观粘度和径向分布函数(RDF)确定了最佳PU含量(20.8%)。使用粘附功、粘附深度和界面热稳定性评估SCA对界面性能的影响。在宏观层面,针对基准热拌SBS改性沥青混合料评估了包括强度、耐高温性、耐低温性和水稳定性在内的性能指标。结果表明,PU改性沥青具有优异的高温性能和强度,但低温性能略低且水稳定性不足。添加SCA改善了低温和水稳定性属性,使混合料能够满足规范要求。模拟结果表明,与PU中的异氰酸酯基团(-OCN)发生化学反应的KH - 550比KH - 570表现出更好的界面增强效果。因此,建议在实际应用中,将KH - 550作为PU改性沥青混合料的首选SCA。