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Research Article

Assessing the effect of short and long-term aging on moisture damage of hot mix asphalt using two different methods

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Article: 2168661 | Received 08 Aug 2022, Accepted 09 Jan 2023, Published online: 27 Jan 2023

References

  • AASHTO, 2009. AASHTO R28, Standard practice for accelerated aging of asphalt binder using a pressurized aging vessel (PAV). American Association of State Highway Transportation Officials.
  • AASHTO, 2013a. AASHTO t 240, standard practice for effect of heat and Air on a moving film of asphalt binder (rolling thin-film oven test). Washington, D.C.: American Association of State Highway and Transportation Officials.
  • AASHTO, 2013b. AASHTO t 283, standard practice for resistance of compacted asphalt mixtures to moistures-induced damage. Washington, D.C.: American Association of State Highway and Transportation Officials.
  • AASHTO, 2015. AASHTO r 30, standard parctice for mixture conditioning of hot mix asphalt(HMA). Washington, D.C.: American Association of State Highway and Transportation Officials.
  • Abadi, K. G., 2019. Investigation the effect of Aging on the moisture susceptibility of Asphalt mixtures. University of Guilan, 21–23.
  • Abed, A. H., et al., 2019. The effect of hybrid anti-stripping agent with polymer on the moisture resistance of hot-mix asphalt mixtures. Cogent Engineering, 6 (1), 1659125.
  • Ahmad, N, 2011. Asphalt mixture moisture sensitivity evaluation using surface energy parameters. Nottingham, England: University of Nottingham.
  • Al Basiouni Al Masri, Z., et al., 2019a. Assessing moisture damage of asphalt-aggregate systems using principles of thermodynamics: effects of recycled materials and binder aging. Journal of Materials in Civil Engineering, 31 (9), 04019190.
  • Al Basiouni Al Masri, Z., et al., 2019b. Evaluating the effect of binder aging and mineral fillers on moisture susceptibility of asphalt concrete using surface free energy. In: Airfield and highway pavements 2019: testing and characterization of pavement materials. American Society of Civil Engineers Reston, VA, 302–312.
  • Albayati, A. H., and Abduljabbar, M. H, 2019. The simulation of short-term aging based on the moisture susceptibility of asphalt concrete mixtures. Results in Engineering, 2, 100012.
  • Al Helo, K. I., Qasim, Z., and Abdulhussein, M. A., 2020. Effect of laboratory aging on moisture susceptibility of polymer-modified bituminous mixtures. In: IOP Conference Series: Materials Science and Engineering, 012131.
  • Ali, S. A., et al., 2022. Effect of additives and aging on moisture-induced damage potential of asphalt mixes using surface free energy and laboratory-based performance tests. International Journal of Pavement Engineering, 23 (2), 285–296.
  • Ameri, M., et al., 2021. Moisture susceptibility of asphalt mixtures: thermodynamic evaluation of the effects of antistripping additives. Journal of Materials in Civil Engineering, 33 (2), 04020457.
  • Asphalt Institute, 2014. MS-2 asphalt mix design methods. 7th ed Lexington, United States: Asphalt Institute.
  • ASTM, 2001. Standard Specification for Hot-Mixed, Hot-Laid Bituminous Paving Mixtures. ASTM D3515. West Conshohocken, PA: ASTM
  • Bhasin, A., and Little, D. N, 2007. Characterization of aggregate surface energy using the universal sorption device. Journal of Materials in Civil Engineering, 19 (8), 634–641.
  • Cao, Z., et al., 2021. Laboratory evaluation of the effect of rejuvenators on the interface performance of rejuvenated SBS modified bitumen mixture by surface free energy method. Construction and Building Materials, 271, 121866.
  • Chakravarty, H., and Sinha, S, 2020. Moisture damage of bituminous pavements and application of nanotechnology in its prevention. Journal of Materials in Civil Engineering, 32 (8), 03120003.
  • Cheng, D., 2002. Surface free energy of asphalt-aggregate system and performance analysis of asphalt concrete. Texas, United States: Texas A&M University.
  • Cheng, D., 2002. Use of surface free energy properties of the asphalt-aggregate system to predict moisture damage potential (with discussion). Journal of the Association of Asphalt Paving Technologists, 71, 59–88.
  • Das, B. P., and Siddagangaiah, A. K, 2022. Identification of parameter to assess cracking resistance of asphalt mixtures subjected to aging and moisture conditioning. Journal of Traffic and Transportation Engineering (English Edition), 9 (2), 293–304.
  • Hamedi, G. H., Ghalandari Shamami, K., and Ghasemdoost Abadi, K, 2022. Effect of antistripping additives on the cohesion, adhesion, and performance of different asphalt mixtures in dry and wet conditions. Journal of Materials in Civil Engineering, 34 (9), 04022225.
  • Hefer, A. W., Bhasin, A., and Little, D. N, 2006. Bitumen surface energy characterization using a contact angle approach. Journal of Materials in Civil Engineering, 18 (6), 759–767.
  • Hossain, K., Karakas, A., and Hossain, Z, 2019. Effects of aging and rejuvenation on surface-free energy measurements and adhesion of asphalt mixtures. Journal of Materials in Civil Engineering, 31 (7), 04019125.
  • Hosseinian, S. M., 2020. Investigation of moisture sensitivity and conductivity properties of inductive asphalt mixtures containing steel wool fiber. Advances in Civil Engineering, 2020. https://doi.org/10.1155/2020/8890814
  • Howson, J. E., et al., 2007. Influence of material factors on surface free energy and performance related parameters. In: International conference: advanced characterisation of pavement and soil engineering materials, 1621–1630.
  • López-Montero, T., et al., 2018. Effect of nanomaterials on ageing and moisture damage using the indirect tensile strength test. Construction and Building Materials, 168, 31–40.
  • Ma, L., et al., 2021. Comprehensive review on the transport and reaction of oxygen and moisture towards coupled oxidative ageing and moisture damage of bitumen. Construction and Building Materials, 283, 122632.
  • Maschauer, D., Mirwald, J., and Hofko, B, 2022. Viennese ageing procedure (VAPro): adaptions and further development to address low-temperature performance of aged asphalt mixtures. Road Materials and Pavement Design, 23 (1), 147–161.
  • Mishra, V., and Singh, D, 2019. Impact of short-term aging temperatures of asphalt binder and aggregate roughness levels on bond strength. Construction and Building Materials, 218, 295–307.
  • Moraes, R., Velasquez, R., and Bahia, H, 2017. Using bond strength and surface energy to estimate moisture resistance of asphalt-aggregate systems. Construction and Building Materials, 130, 156–170.
  • Nikolaides, A, 2014. Highway engineering: pavements, materials and control of quality. florida: CRC Press.
  • Rahmani, H., Shirmohammadi, H., and Hamedi, G. H, 2018. Effect of asphalt binder aging on thermodynamic parameters and its relationship with moisture sensitivity of asphalt mixes. Journal of Materials in Civil Engineering, 30 (11), 04018278–1-11.
  • Van Oss, C. J., Chaudhury, M. K., and Good, R. J., 1988. Interfacial Lifshitz-van der Waals and polar interactions in macroscopic systems. Chemical Reviews, 88 (6), 927–941.
  • Wang, W., 2020. Surface free energy method for evaluating the effects of anti-stripping agents on the moisture damage to asphalt mixtures. Journal of Adhesion Science and Technology, 34 (18), 1947–1970.

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