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Research Article

Study on effect of thermal, oxidative and ultraviolet coupled aging on rheological properties of asphalt binder and their contribution rates

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Article: 2239426 | Received 19 May 2023, Accepted 14 Jul 2023, Published online: 01 Aug 2023

References

  • Abouelsaad, A., and White, G., 2022. The combined effect of ultraviolet irradiation and temperature on hot mix asphalt mixture aging. Sustainability, 14 (10), 5942.
  • Anderson, R. M., et al., 2011. Evaluation of the relationship between asphalt binder properties and non-load related cracking. Journal of the Association of Asphalt Paving Technologists.
  • Bhasin, A., Tan, Y., and Guo, M., 2017. Effect of mineral fillers adsorption on rheological and chemical properties of asphalt binder. Construction and Building Materials, 141 (Jun.15), 152–159.
  • Canestrari, F., and Ingrassia, L. P., 2020. A review of top-down cracking in asphalt pavements: Causes, models, experimental tools and future challenges. Journal of Traffic and Transportation Engineering (English Edition), 7, 541–572.
  • Cao, Wei, Wang, Yang, and Wang, Chao, 2019. Fatigue characterization of bio-modified asphalt binders under various laboratory aging conditions. Construction and Building Materials, 208, 686–696.
  • Celauro, C., Teresi, R., and Dintcheva, N. T., 2022. Effect of short-term and UV irradiation aging on the behaviour of SBS-modified bitumen. Sustainability, 14 (11), 6915.
  • Chang, X., et al., 2022. Temperature dependency of VOCs release characteristics of asphalt materials under varying test conditions. Journal of Traffic and Transportation Engineering (English Edition), 9, 280–292.
  • Chen, H., et al., 2016. The analysis of impacts on asphalt aging under complex condition of heat-water-light. Journal of Transport Science and Engineering.
  • Chen, H., and Bahia, H. U., 2022. Proposed asphalt binder fatigue criteria for various traffic conditions using the LAS or the G–R parameters. Materials and Structures, 55, 1–12.
  • Ding, H., et al., 2021. Thermoreversible aging in model asphalt binders. Construction and Building Materials, 303, 124355.
  • Domke, C. H., Davison, R. R., and Glover, C. J., 2000. Effect of oxygen pressure on asphalt oxidation kinetics. Industrial & Engineering Chemistry Research, 39, 592–598.
  • Durrieu, F., Farcas, F., and Mouillet, V., 2007. The influence of UV aging of a Styrene/Butadiene/Styrene modified bitumen: Comparison between laboratory and on site aging. Fuel, 86, 1446–1451.
  • Fatemi, S., et al., 2022. Rheological evaluation of asphalt binder modified by amorphous poly alpha olefin (APAO). Construction and Building Materials, 314, 125371.
  • Glover, C. J., et al., 2005. Development of a new method for assessing asphalt binder durability with field validation. Bituminous Binders.
  • Guo, M., et al., 2021. Rheological characterization of reversibility between aging and rejuvenation of common modified asphalt binders. Construction and Building Materials, 301, 124077.
  • Guo, M., et al., 2022. Characterisation of rejuvenation of various modified asphalt binders based on simplified chromatographic techniques. International Journal of Pavement Engineering, 23 (12), 4333–4343.
  • Guo, M., et al., 2023a. A state-of-the-art review on the functionality of ultra-thin overlays towards a future low carbon road maintenance. Engineering.
  • Guo, M., et al., 2023b. Reversibility of macro performance of virgin asphalt binder at various aging regeneration stages based on rheology. Journal of Materials in Civil Engineering, doi:10.1061/JMCEE7/MTENG-16061.
  • Guo, M., et al., 2023c. Effect of aging, temperature and relative humidity on adhesion between asphalt binder and mineral aggregate. Construction and Building Materials, 363, 129775.
  • Guo, M., et al., 2023d. Evaluation on feasibility of carbon black and hindered 2 amine light stabilizer as UV-resistant additives of asphalt binder. Journal of Testing and Evaluation.
  • Hirato, T., et al., 2016. Effect of long-term aging on rheological properties of asphalt. Journal of the Japan Petroleum Institute, 59, 97–103.
  • Huang, S. C., Tia, M., and Ruth, B. E., 1996. Laboratory aging methods for simulation of field aging of asphalts. Journal of Materials in Civil Engineering, 8, 147–152.
  • Huang, M., Wang, X., and Huang, W., 2013. Analysis of influencing factors for self-healing of fatigue performance of asphalt rubber mixture. China Journal of Highway and Transport, 26.
  • Joseph, L., and Donath, M., 2005. New measurement of thermal properties of superpave asphalt concrete. Journal of Materials in Civil Engineering, 17, 72–79.
  • Kumar, S. A., and Veeraragavan, A., 2012. Rheological and rutting characterization of asphalt mixes with modified binders. Journal of Testing and Evaluation, 40, 66–77.
  • Li, Y., et al., 2019a. Aging effects of ultraviolet lights with same dominant wavelength and different wavelength ranges on a hydrocarbon-based polymer (asphalt). Polymer Testing, 75.
  • Li, Y., et al., 2019b. Aging degradation of asphalt binder by narrow-band UV radiations with a range of dominant wavelengths. Construction and Building Materials, 220, 637–650.
  • Li, H., et al., 2020. Influence of ultraviolet and oxygen coupling aging on rheological properties and functional group index of warm mix asphalt binder. Materials, 13 (19), 4216.
  • Li, Q., et al., 2022. Aging performance of high viscosity modified asphalt under complex heat-light-water coupled conditions. Construction and Building Materials, 325, 126314.
  • Liang, B., Lan, F., and Zheng, J., 2021. Research and development of relationship between aging mechanism and fatigue properties of asphalt. Materials Reports, 35, 14.
  • Liu, F., Zhou, Z., Zhang, X., et al., 2021. Linking chemical to rheological properties of asphalt binder with oxidative aging effect. Road Materials and Pavement Design, 22, 2014–2028.
  • Miglietta, F., et al., 2022. Investigating the effect of temperature on self-healing properties of neat and polymer-modified bituminous binders. Road Materials and Pavement Design, 23, 2–15.
  • Miró, R., et al., 2015. Effect of ageing and temperature on the fatigue behaviour of bitumens. Materials & Design, 86, 129–137.
  • Moon, K. H., Falchetto, A. C., and Hu, J. W., 2014. Investigation of asphalt binder and asphalt mixture low temperature creep properties using semi mechanical and analogical models. Construction and Building Materials, 53, 568–583.
  • Pan, J., Hossain, M. I., and Tarefder, R. A., 2017. Temperature and moisture impacts on asphalt before and after oxidative aging using molecular dynamics simulations. Journal of Nanomechanics and Micromechanics, 7.
  • Petersen, J. C., 2009. A review of the fundamentals of asphalt oxidation: chemical, physicochemical, physical property, and durability relationships. Transportation Research E Circular.
  • Qiu, G., 2014. Study of asphalt aging mechanism by high temperature. Urban Roads Bridges & Flood Control.
  • Qu, X., Ding, H., and Wang, H., 2022. The state-of-the-art review on evaluation methods of asphalt binder aging. China Journal of Highway and Transport, 35, 205–220.
  • Riccardi, C., et al., 2017. Effect of cooling medium on low-temperature properties of asphalt binder. Asphalt Paving Technology, 86, 315–349.
  • Rowe, G. M., King, G., and Anderson, M., 2014. The influence of binder rheology on the cracking of asphalt mixes in airport and highway projects. Journal of Testing and Evaluation, 42, 20130245.
  • Ruan, Y., Davison, R. R., and Glover, C. J., 2003. The effect of long-term oxidation on the rheological properties of polymer modified asphalts★. Fuel, 82, 1763–1773.
  • Shi, X., et al., 2018. Effects of nano-silica and rock asphalt on rheological properties of modified bitumen. Construction and Building Materials, 161, 705–714.
  • Siddiqui, M. N., and Ali, M. F., 1999. Studies on the aging behavior of the Arabian asphalts. Fuel, 78, 1005–1015.
  • Soenen, H., Lu, X., and Laukkanen, O., 2016. Oxidation of bitumen: molecular characterization and influence on rheological properties. Rheologica Acta, 55, 315–326.
  • Song, S., et al., 2022. Effects of different natural factors on rheological properties of SBS modified asphalt. Materials, 15 (16).
  • Sui, C., et al., 2010. New technique for measuring low-temperature properties of asphalt binders with small amounts of material. Transportation Research Record: Journal of the Transportation Research Board, 2179, 23–28.
  • Tan, Y., et al., 2008. Ultraviolet aging mechanism of asphalt binder. China Journal of Highway and Transport, 89, 19–24.
  • Wang, P., et al., 2014. Evolution and locational variation of asphalt binder aging in long-life hot-mix asphalt pavements. Construction and Building Materials, 68, 172–182.
  • Wang, H., Feng, Z., and Zhou, B., 2012. A study on photo-thermal coupled aging kinetics of bitumen. Journal of Testing and Evaluation, 40, 20120065.
  • Xiao, F., et al., 2015. Rheology evaluations of WMA binders using ultraviolet and PAV aging procedures. Construction and Building Materials, 79, 56–64.
  • Xu, S., et al., 2022. Investigation of the aging behaviors of reclaimed asphalt. Journal of Cleaner Production, 356, 131837.
  • Xue, X., et al., 2022. Evaluation of high-temperature and low-temperature performances of lignin–waste engine oil modified asphalt binder and its mixture. Materials, 15 (1), 52.
  • Yamaguchi, K., Sasaki, I., and Meiarashi, S., 2004. Mechanism of asphalt binder aging by ultraviolet irradiation and aging resistance by adding carbon black. Journal of the Japan Petroleum Institute, 47, 266–273.
  • Yao, H., et al., 2013. Rheological properties and chemical analysis of nanoclay and carbon microfiber modified asphalt with fourier transform infrared spectroscopy. Construction and Building Materials, 38, 327–337.
  • Yener, E., and Hnslolu, S., 2014. Effects of exposure time and temperature in aging test on asphalt binder properties. International Journal for Computational Civil and Structural Engineering, 5, 112–124.
  • Yin, L., et al., 2021. Mechanical properties and reaction mechanism of microwave-activated crumb rubber-modified asphalt before and after thermal aging. Construction and Building Materials, 267, 120773.
  • Yusoff, N., et al., 2013. Modelling the rheological properties of bituminous binders using mathematical equations. Construction and Building Materials, 40, 174–188.
  • Zeng, W., et al., 2015. The temperature effects in aging index of asphalt during UV aging process. Construction and Building Materials, 93, 1125–1131.
  • Zhang, J., et al., 2015. Rheological properties of warm mix asphalt binder by DSR test at medium temperature. Journal of Southeast University (English Edition), 3, 384–388.
  • Zhang, H., et al., 2021. Mini-review on the application of nanomaterials in improving anti-aging properties of asphalt. Energy & Fuels, 35 (14).
  • Zhang, X., et al., 2022. Experimental characterization of the oxidative kinetic aging behavior of rejuvenated asphalt binder. Construction and Building Materials, 346, 128488.

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