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Articles

On the linking of the rheological properties of asphalt binders exposed to oven aging and PAV aging

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Pages 331-340 | Received 08 Jan 2019, Accepted 12 Apr 2019, Published online: 06 May 2019

References

  • Anderson, D.A., et al., 1994. Binder characterization and evaluation volume 3: physical characterization. SHRP-A-369. Washington, DC: National Research Council.
  • Anderson, R.M., King, G., and Hanson, Doug, 2011. Evaluation of the relationship between asphalt binder properties and non-load related cracking. Journal of Association of Asphalt Paving Technology, 80 (4), 615–663.
  • Azahar, W.N.A.W., et al., 2016. Chemical modification of waste cooking oil to improve the physical and rheological properties of asphalt binder. Construction and Building Materials, 126 (15), 218–226. doi: 10.1016/j.conbuildmat.2016.09.032
  • Bahia, H.U. and Anderson, D. A, 1995. The pressure aging vessel (PAV): a teste to simulate rheological changes due to field aging. American Society for Testing and Materials, 1241, 67–88.
  • Banerjee, A., Smit, A.D.F., and Prozzi, J. A, 2012. The effect of long-term aging on the rheology of warm mix asphalt binders. Fuel, 97, 603–611. doi: 10.1016/j.fuel.2012.01.072
  • Cui, Y., et al., 2014. An accelerated method for determining asphalt oxidation kinetics parameters for use in pavement oxidation and performance modeling. Petroleum Science and Technology, 32 (22), 2691–2699. doi: 10.1080/10916466.2014.894056
  • Cui, Z.C., et al., 2017. Effects of aging on the low temperature properties of asphalt binder and its mixture. Materials Science Forum, 898, 2018–2022. doi: 10.4028/www.scientific.net/MSF.898.2018
  • Domke, C.H., Davison, R.R., and Glover, C.J., 1999. Effect of oxidation pressure on asphalt hardening susceptibility. Transportation Research Record: Journal of the Transportation Research Board, 1661, 114–121. doi: 10.3141/1661-16
  • Domke, C.H., Davison, R.R., and Glover, C.J., 2000. Effect of oxygen pressure on asphalt oxidation kinetics. Industrial & Engineering Chemistry Research, 39 (3), 592–598. doi: 10.1021/ie9906215
  • Farrar, M.J., et al., 2013. Evolution of the crossover modulus with oxidative aging: a method to estimate the change in viscoelastic properties of an asphalt binder with time and depth on the road. Transportation Research Record: Journal of the Transportation Research Board, 2370, 76–83. doi: 10.3141/2370-10
  • Giavarini, C., et al., 2000. Macrostructure and rheological properties of chemically modified residues and bitumens. Energy & Fuels, 14 (2), 495–502. doi: 10.1021/ef9902045
  • Glaser, R.R., et al., 2013. Low temperature oxidation kinetics of asphalt binders. Journal of the Transportation Research Board, 2370, 63–68. doi: 10.3141/2370-08
  • Hou, X.D., et al., 2018. Identification of asphalt aging characterization by spectrophotometry technique. Fuel, 226, 230–239. doi: 10.1016/j.fuel.2018.04.030
  • Huang, S.C., Glaser, R., and Turner, F., 2012. Impact of water on asphalt aging: chemical aging kinetic study. Transportation Research Record, 2293, 63–72. doi: 10.3141/2293-08
  • Huang, S.C., and Grimes, W, 2010. Influence of aging temperature on rheological and chemical properties of asphalt binders. Journal of the Transportation Research Board, 2179, 39–48. doi: 10.3141/2179-05
  • Jin, X., et al., 2011. Fast rate-constant rate oxidation kinetics model for asphalt binders. Industrial and Engineering Chemistry Research, 50 (23), 13373–13379. doi: 10.1021/ie201275q
  • Lau, C.K., et al., 1992. Reaction rates and hardening susceptibilities as determined from pressure oxygen vessel aging of asphalts. Transportation Research Record, 1342, 50–57.
  • Liu, M.M., et al., 1996. The kinetics of carbonyl formation in asphalt. AIChE Journal, 42, 1069–1076. doi: 10.1002/aic.690420417
  • Liu, G.L. and Glover, C.J., 2015. A study on the oxidation kinetics of warm mix asphalt. Chemical Engineering Journal, 280, 115–120. doi: 10.1016/j.cej.2015.05.074
  • Liu, F. and Wen, H.F, 2015. Prediction of rheological and damage properties of asphalt binders that result from oxidative aging. Journal of Transportation Research Records, 2505, 92–98. doi: 10.3141/2505-12
  • Liu, F., Zhou, Z.D., and Wang, Y., 2019. Predict the rheological properties of aged asphalt binders using a universal Kinetic model. Construction and Building Materials, 195, 283–291. doi: 10.1016/j.conbuildmat.2018.11.025
  • Martin, K.L., et al., 1990. Asphalt aging in Texas roads and test sections. Transportation Research Record, 1269, 9–19.
  • Morian, N.E., 2014. Influence of mixture characteristics on the oxidative aging of asphalt binders. Dissertations & Theses. University of Nevada, Reno.
  • Padmarekha, A. and Krishnan, J.M., 2013. Viscoelastic transition of unaged and aged asphalt. Journal of Materials in Civil Engineering, 25 (12), 1852–1863. doi: 10.1061/(ASCE)MT.1943-5533.0000734
  • Petersen, J.C., et al., 1993. Effects of physicochemical factors on asphalt oxidation kinetics. Transportation Research Record, 1391, 1–10.
  • Petersen, J.C. and Harnsberger, P.M., 1998. Asphalt aging: dual oxidation mechanism and its interrelationships with asphalt composition and oxidative age hardening. Journal of the Transportation Research Record, 1638 (1), 47–55. doi: 10.3141/1638-06
  • Qin, Q., et al., 2014. Field aging effect on chemistry and rheology of asphalt binders and rheological predictions for field aging. Fuel, 121 (2), 86–94. doi: 10.1016/j.fuel.2013.12.040
  • Rose, A.A., et al., 2016. Investigation of the effects of recycled engine oil bottoms on asphalt field performance following an oxidation modeling approach. Petroleum Science and Technology, 34 (21), 1768–1776. doi: 10.1080/10916466.2016.1230753
  • 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 (5), 1063–1072. doi: 10.1520/JTE20130245
  • Ruan, Y., et al., 2003. The effect of long-term oxidation on the rheological properties of polymer modified asphalts. Fuel, 82 (14), 1763–1773. doi: 10.1016/S0016-2361(03)00144-3
  • Steiner, D., et al., 2015. Towards an optimized lab procedure for long term oxidative aging of asphalt mix specimen. International Journal of Pavement Engineering, 17 (6), 471–477. doi: 10.1080/10298436.2014.993204
  • Vargas, X.A., et al., 2008. Asphalt rheology evolution through thermo-oxidation (aging) in a rheo-reactor. Fuel, 87 (13), 3018–3023. doi: 10.1016/j.fuel.2008.04.026
  • Xu, G. and Wang, H., 2017. Molecular dynamics study of oxidative aging effect on asphalt binder properties. Fuel, 188, 1–10. doi: 10.1016/j.fuel.2016.10.021
  • Yang, X., Mills-Beale, J., and You, Z., 2017. Chemical characterization and oxidative aging of bio-asphalt and its compatibility with petroleum asphalt. Journal of Cleaner Production, 142, 1837–1847. doi: 10.1016/j.jclepro.2016.11.100
  • Zhou, F., Chen, P., and Huang, S.C., 2014. Characteristics of virgin and recycled asphalt shingle binder blends. Transportation Research Record: Journal of the Transportation Research Board, 2444, 78–87. doi: 10.3141/2444-09
  • Zhu, C., 2015. Evaluation of thermal oxidative aging effect on the rheological performance of modified asphalt binders. Master Diss. University of Nevada, Reno.

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