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Original Articles

Effects of material characteristics on asphalt and filler interaction ability

ORCID Icon, ORCID Icon, ORCID Icon & ORCID Icon
Pages 928-937 | Received 21 Oct 2016, Accepted 31 Jul 2017, Published online: 24 Aug 2017

References

  • Alavi, M. , Hajj, E.Y. , and Sebaaly, P.E. , 2015. A comprehensive model for predicting thermal cracking events in asphalt pavements. International Journal of Pavement Engineering , 18(9), 871–885. Available from: http://dx.doi.org/10.1080/10298436.2015.1066010.
  • Babadopulos, L. , et al. , 2016. Aging-effect incorporation into the fatigue-damage modeling of asphalt mixtures using the S-VECD model. Journal of Materials in Civil Engineering , 28 (12), 04016161.
  • Buttlar, W. , et al. , 1999. Understanding asphalt mastic behavior through micromechanics. Transportation Research Record: Journal of the Transportation Research Board , 1681, 157–169.10.3141/1681-19
  • Clopotel, C. , Velasquez, R. , and Bahia, H. , 2012. Measuring physico-chemical interaction in mastics using glass transition. Road Materials and Pavement Design , 13, 304–320.10.1080/14680629.2012.657095
  • Craus, J. , Ishai, I. , and Sides, A. , 1978. Some physico-chemical aspects of the effect and the role of the filler in bituminous paving mixtures. Journal of the Association of Asphalt Paving Technologists , 47, 558–588.
  • Davis, C. and Castorena, C. , 2015. Implications of physico-chemical interactions in asphalt mastics on asphalt microstructure. Construction and Building Materials , 94, 83–89.10.1016/j.conbuildmat.2015.06.026
  • Faheem, A.F. and Bahia, H.U. , 2010. Modelling of asphalt mastic in terms of filler-bitumen interaction. Road Materials and Pavement Design , 11, 281–303.10.1080/14680629.2010.9690335
  • Graebling, D. and Muller, R. , 1991. Determination of interfacial tension of polymer melts by dynamic shear measurements. Colloids & Surfaces , 55 (91), 89–103.10.1016/0166-6622(91)80085-3
  • Guo, M. 2012. Interfacial behavior of asphalt mastics and its mechanism . Harbin Institute of Technology .
  • Guo, M. , et al. , 2016. Investigating the interaction between asphalt binder and fresh and simulated RAP aggregate. Materials & Design , 105, 25–33.10.1016/j.matdes.2016.04.102
  • Hesami, E. , Birgisson, B. , and Kringos, N. , 2014. Numerical and experimental evaluation of the influence of the filler-bitumen interface in mastics. Materials and Structures , 47 (8), 1325–1337.10.1617/s11527-013-0237-8
  • Huang, S.-C. and Zeng, M. , 2007. Characterization of aging effect on rheological properties of asphalt-filler systems. International Journal of Pavement Engineering , 8 (3), 213–223.10.1080/10298430601135477
  • Ibarra, L. and Panos, D. , 1998. Dynamic properties of thermoplastic butadiene-styrene (SBS) and oxidized short carbon fiber composite materials. Journal of Applied Polymer Science , 67 (10), 1819–1826.10.1002/(ISSN)1097-4628
  • Jahangir, R. , Little, D. , and Bhasin, A. , 2015. Evolution of asphalt binder microstructure due to tensile loading determined using AFM and image analysis techniques. International Journal of Pavement Engineering , 16 (4), 337–349.10.1080/10298436.2014.942863
  • Kim, M. and Buttlar, W.G. , 2010. Stiffening mechanisms of asphalt-aggregate mixtures from binder to mixture. Transportation Research Record , 2181, 98–108.10.3141/2181-11
  • Kim, Y.R. , Little, D.N. and Song, I. , 2003. Effect of mineral fillers on fatigue resistance and fundamental material characteristics: mechanistic evaluation. Transportation Research Record: Journal of the Transportation Research Board , 1832, 1–8.
  • Little, D.N. and Petersen, J.C. , 2005. Unique effects of hydrated lime filler on the performance-related properties of asphalt cements: physical and chemical interactions revisited. Journal of Materials in Civil Engineering , 17 (2), 207–218.10.1061/(ASCE)0899-1561(2005)17:2(207)
  • Mallick, R.B. , Pelland, R. , and Hugo, F. , 2005. Use of accelerated loading equipment for determination of long term moisture susceptibility of hot mix asphalt. International Journal of Pavement Engineering , 6 (2), 125–136.10.1080/10298430500158984
  • Ministry of Transport of the People’s Republic of China. , 2004. Technical Specification for Construction of Highway Asphalt Pavement JTG F40-2004 . Beijing: China Communication Press.
  • Ministry of Transport of the People’s Republic of China. , 2011. Standard test methods of bitumen and bituminous mixtures for highway engineering JTG E20-2011 . Beijing: China Communication Press.
  • Palierne, J.F. , 1990. Linear rheology of viscoelastic emulsions with interfacial tension. Rheologica Acta , 29 (3), 204–214.10.1007/BF01331356
  • Pauli, A.T. , et al. , 2011. Morphology of asphalts, asphalt fractions and model wax-doped asphalts studied by atomic force microscopy. International Journal of Pavement Engineering , 12 (4), 291–309.10.1080/10298436.2011.575942
  • Pei, J.Z. , et al. , 2015. Micromechanics prediction of effective modulus for asphalt mastic considering inter-particle interaction. Construction and Building Materials , 101 (Part 1), 209–216.
  • Robati, M. , Carter, A. , and Perraton, D. , 2015. New conceptual model for filler stiffening effect on asphalt mastic of microsurfacing. Journal of Materials in Civil Engineering , 27 (11), 04015033.
  • Shao, X.Z. , Tan, Y.Q. , and Sun, L.J. 2005. Analysis on the relationship between several indexes of mineral filler and asphalt mortar. Journal of Highway & Transportation Research & Development , 22 (2), 10–13.
  • Shashidhar, N. and Romero, P. , 1998. Factors affecting the stiffening potential of mineral fillers. Transportation Research Record: Journal of the Transportation Research Board , 1638, 94–100.10.3141/1638-11
  • Tan, Y. and Guo, M. , 2014a. Interfacial thickness and interaction between asphalt and mineral fillers. Materials and Structures , 47 (4), 605–614.10.1617/s11527-013-0083-8
  • Tan, Y. and Guo, M. , 2014b. Micro- and nano-characteration of interaction between asphalt and filler. Journal of Testing and Evaluation , 42 (5), 1089–1097.
  • Tan, Y.Q. , et al. , 2009. Evaluation indexes for interaction capability of asphalt and aggregate. Journal of Harbin Institute of Technology , 41 (7), 81–84.
  • Tan, Y.Q. , Li, X.L. , and Wu, J.T. , 2012. Evaluation indices of interaction ability of asphalt and aggregate based on rheological characteristics. Journal of Wuhan University of Technology-Materials Science Edition , 27 (5), 979–985.10.1007/s11595-012-0585-1
  • Wang, H. , et al. , 2011. Effect of mineral filler characteristics on asphalt mastic and mixture rutting potential. Transportation Research Record , 2208, 33–39.10.3141/2208-05
  • Xiao, Q. , Qian, C. , and Xie, J. , 2004. Experimental research on modification of asphalt concrete performance and asphalt-aggregate interface by coupling agent. Journal of Southeast University (Natural Science Edition) , 34 (4), 485–489.
  • Xiao, F.P. , Amirkhanian, A.N. , and Amirkhanian, S.N. , 2011. Long-term ageing influence on rheological characteristics of asphalt binders containing carbon nanoparticles. International Journal of Pavement Engineering , 12 (6), 533–541.10.1080/10298436.2011.560267
  • Yao, H. , Dai, Q.L. , and You, Z.P. , 2015. Chemo-physical analysis and molecular dynamics (MD) simulation of moisture susceptibility of nano hydrated lime modified asphalt mixtures. Construction and Building Materials , 101, 536–547.10.1016/j.conbuildmat.2015.10.087
  • Zhang, J.P. , et al. , 2016a. Evaluation indices of asphalt–filler interaction ability and the filler critical volume fraction based on the complex modulus. Road Materials and Pavement Design , 1–15.
  • Zhang, J.P. , et al. , 2016b. Evaluation of asphalt–aggregate interaction based on the rheological properties. International Journal of Pavement Engineering , 1–7. doi: 10.1080/10298436.2016.1199868
  • Zhang, J.P. , et al. , 2016c. Effects of temperature and loading frequency on asphalt and filler interaction ability. Construction and Building Materials , 124, 1028–1037.10.1016/j.conbuildmat.2016.08.151
  • Ziegel, K.D. and Romanov, A. , 1973. Modulus reinforcement in elastomer composites. I. Inorganic fillers. Journal of Applied Polymer Science , 17 (4), 1119–1131.10.1002/app.1973.070170410

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