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Cold In-Place Recycling Asphalt Mixtures: Laboratory Performance and Preliminary M-E Design Analysis

机译:冷却地回收沥青混合物:实验室性能和初步M-E设计分析

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摘要

Cold in-place recycling (CIR) asphalt mixtures are an attractive eco-friendly method for rehabilitating asphalt pavement. However, the on-site CIR asphalt mixture generally has a high air void because of the moisture content during construction, and the moisture susceptibility is vital for estimating the road service life. Therefore, the main purpose of this research is to characterize the effect of moisture on the high-temperature and low-temperature performance of a CIR asphalt mixture to predict CIR pavement distress based on a mechanistic–empirical (M-E) pavement design. Moisture conditioning was simulated by the moisture-induced stress tester (MIST). The moisture susceptibility performance of the CIR asphalt mixture (pre-mist and post-mist) was estimated by a dynamic modulus test and a disk-shaped compact tension (DCT) test. In addition, the standard solvent extraction test was used to obtain the reclaimed asphalt pavement (RAP) and CIR asphalt. Asphalt binder performance, including higher temperature and medium temperature performance, was evaluated by dynamic shear rheometer (DSR) equipment and low-temperature properties were estimated by the asphalt binder cracking device (ABCD). Then the predicted pavement distresses were estimated based on the pavement M-E design method. The experimental results revealed that (1) DCT and dynamic modulus tests are sensitive to moisture conditioning. The dynamic modulus decreased by 13% to 43% at various temperatures and frequencies, and the low-temperature cracking energy decreased by 20%. (2) RAP asphalt incorporated with asphalt emulsion decreased the high-temperature rutting resistance but improved the low-temperature anti-cracking and the fatigue life. The M-E design results showed that the RAP incorporated with asphalt emulsion reduced the international roughness index (IRI) and AC bottom-up fatigue predictions, while increasing the total rutting and AC rutting predictions. The moisture damage in the CIR pavement layer also did not significantly affect the predicted distress with low traffic volume. In summary, the implementation of CIR technology in the project improved low-temperature cracking and fatigue performance in the asphalt pavement. Meanwhile, the moisture damage of the CIR asphalt mixture accelerated high-temperature rutting and low-temperature cracking, but it may be acceptable when used for low-volume roads.
机译:冷却地回收源(CIR)沥青混合物是一种令人吸引人的生态融合方法,用于康复沥青路面。然而,由于施工期间的水分含量,现场CIR沥青混合物通常具有高空隙,并且对于估计道路使用寿命,水分敏感性至关重要。因此,本研究的主要目的是表征水分对CIR沥青混合料的高温和低温性能的影响,以基于机械 - 经验(M-E)路面设计来预测CIR路面窘迫。通过耐水分应力测试仪(雾)模拟水分调理。通过动态模量试验和盘形紧凑张力(DCT)测试估计Cir沥青混合物(雾气和椎间雾)的水分敏感性性能。此外,标准溶剂萃取试验用于获得再生沥青路面(RAP)和CIR沥青。通过动态剪切流变仪(DSR)设备(DSR)设备评估沥青粘合剂性能,包括较高温度和中温性能,并通过沥青粘合剂裂解装置(ABCD)估计低温性能。然后基于路面M-E设计方法估计预测的路面掩缝。实验结果表明,(1)DCT和动态模量试验对水分调节敏感。在各种温度和频率下,动态模量降低了13%至43%,低温裂化能量降低了20%。 (2)含有沥青乳液的RAP沥青降低了高温车辙抗性,但改善了低温抗裂和疲劳寿命。 M-E的设计结果表明,RAP加入了沥青乳液的RAP减少了国际粗糙度指数(IRI)和AC自下而上的疲劳预测,同时增加了总辙和交流管道预测。 CIR路面层中的水分损坏也没有显着影响预测的困扰,具有低交通量。综上所述,在沥青路面中的磁化技术的实施改善了低温开裂和疲劳性能。同时,CIR沥青混合混合物的水分损伤加速了高温车辙和低温裂缝,但在用于低批量道路时可能是可接受的。

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