热氧化老化对含蜡基温拌添加剂的碎屑橡胶改性沥青胶结料化学流变学和形态演变的影响

Lei Xu, Mingjun Hu, Hangtian Ni, Daquan Sun, Yufeng Tian
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引用次数: 0

摘要

蜡基温拌添加剂可以降低橡胶屑(CR)改性沥青的粘度并改善其工作性,但其对CR改性沥青老化性能的影响机理尚不清楚。为了研究蜡基温拌 CR 改性沥青的热老化行为及其机理,将聚乙烯蜡(PEW)和聚酰胺蜡(PAW)混合制备温拌 CR 改性沥青。通过基本性能试验、频率扫描试验和多应力蠕变恢复试验表征了热老化对流变和机械性能的影响。然后通过傅立叶变换红外光谱法和凝胶渗透色谱法分析了老化过程中化学成分的变化。最后,用荧光显微镜观察了热老化过程中的相形态。结果表明,与 CR 的降解相比,沥青胶结料的氧化老化在降解过程中起着主导作用。PEW 和 PAW 不仅以结晶的形式附着在沥青表面,阻止其与氧气发生反应,而且还促进了 CR 的溶解,释放了聚合链,从而增强了 CR 改性沥青的抗老化性能。此外,PAW/CR 改性沥青的抗老化性能优于 PEW/CR 改性沥青,这是因为 PAW 的酰胺基与 CR 改性沥青反应形成了聚合物结构。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Thermal Oxidative Aging Effect on Chemo-Rheological and Morphological Evolution of Crumb Rubber Modified Asphalt Binders with Wax-Based Warm Mix Additives
Wax-based warm mix additives can decrease the viscosity and improve the workability of crumb rubber (CR)-modified asphalt, but the mechanism of influence on the aging performance of CR-modified asphalt is not clear. To investigate the thermal aging behavior and mechanism of wax-based warm mix CR-modified asphalt, polyethylene wax (PEW) and polyamide wax (PAW) were mixed to prepare warm mix CR-modified asphalt. The effect of thermal aging on the rheological and mechanical properties was characterized by a basic property test, frequency sweep test, and multiple stress creep recovery test. The chemical composition changes during aging were then analyzed by Fourier transform infrared spectroscopy and gel permeation chromatography. Finally, the phase morphology during thermal aging was observed by fluorescence microscopy. The results showed that compared with the degradation of CR, the oxidative aging of the asphalt binder played a dominant role in the process. Not only did PEW and PAW attach to the asphalt surface in the form of crystallization to prevent its reaction with oxygen but they also promoted the dissolution of CR, and released polymerization chains, thereby enhancing the antiaging properties of CR-modified asphalt. Furthermore, the antiaging of PAW/CR-modified asphalt was better than that of PEW/CR-modified asphalt, because the amide group of PAW reacted with CR-modified asphalt to form a polymer structure.
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