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Research Article

Sustainable asphalt mixtures: enhancing environmental impact by partial fine aggregate substitution with rubber powder and bitumen modification using Nano-SiO2

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Article: 2257851 | Received 02 Feb 2023, Accepted 06 Sep 2023, Published online: 01 Dec 2023

References

  • Ahmadinia, E., et al., 2012. Performance evaluation of utilization of waste polyethylene terephthalate (PET) in stone mastic asphalt. Construction and Building Materials, 36, 984–989.
  • Amirkhanian, S.N., 2001. Utilization of crumb rubber in asphaltic concrete mixtures - South Carolina's Experience.
  • Arabani, M., Tahami, S.A., and Hamedi, G.H., 2018. Performance evaluation of dry process crumb rubber-modified asphalt mixtures with nanomaterial. Road Materials and Pavement Design, 19, 1241–1258.
  • Bansal, S., Misra, A.K., and Bajpai, P., 2017. Evaluation of modified bituminous concrete mix developed using rubber and plastic waste materials. International Journal of Sustainable Built Environment, 6, 442–448.
  • Cao, W.D., 2007. Study on properties of recycled tire rubber modified asphalt mixtures using dry process. Construction and Building Materials, 21, 1011–1015.
  • Chopra, A., and Singh, S.K., 2020. Experimental investigation of modified bituminous concrete mix using nitrile butadiene rubber (NBR). Materials Today: Proceedings, 33, 1660–1665.
  • Dong, R., Zhao, M., and Tang, N., 2019. Characterization of crumb tire rubber lightly pyrolyzed in waste cooking oil and the properties of its modified bitumen. Construction and Building Materials, 195, 10–18.
  • Firouzinia, M., and Shafabakhsh, G., 2018. Investigation of the effect of nano-silica on thermal sensitivity of HMA using artificial neural network. Construction and Building Materials, 170, 527–536.
  • Ghanoon, S.A. and Tanzadeh, J., 2019. Laboratory evaluation of nano-silica modification on rutting resistance of asphalt binder. Construction and Building Materials, 223, 1074–1082.
  • Hamed, F.K., 2010. Evaluation of fatigue resistance for modified asphalt concrete mixtures based on dissipated energy concept.
  • Hamedipour, A. M., Shafabakhsh, G., and Sadeghnejad, M., 2023. The impact of Nano-TiO2 particles on the moisture susceptibility and fracture toughness of HMA under mixed-mode I/II loading and various crack geometry and temperatures. Journal of Materials in Civil Engineering, 35 (3), 04022444.
  • Hassan, N.A., et al., 2014. A review of crumb rubber modification in dry mixed rubberised asphalt mixtures.
  • Jitsangiam, P., et al., 2021. An examination of natural rubber modified asphalt: effects of rubber latex contents based on macro- and micro-observation analyses. Construction and Building Materials, 289, 123158.
  • Kaloush, K.E., 2014. Asphalt rubber: performance tests and pavement design issues. Construction and Building Materials, 67, 258–264.
  • Li, R., et al., 2017. Developments of nano materials and technologies on asphalt materials – a review. Construction and Building Materials, 143, 633–648.
  • Napierska, D., et al., 2010. The nanosilica hazard: another variable entity. Particle and Fibre Toxicology, 7, 39–39.
  • Navarro, F.M., and Gámez, M.C., 2012. Influence of crumb rubber on the indirect tensile strength and stiffness modulus of Hot bituminous mixes. Journal of Materials in Civil Engineering, 24, 715–724.
  • Nazari, H., Naderi, K., and Nejad, F.M., 2018. Improving aging resistance and fatigue performance of asphalt binders using inorganic nanoparticles. Construction and Building Materials, 170, 591–602.
  • Pérez, I., and Pasandín, A.R., 2017. Moisture damage resistance of hot-mix asphalt made with recycled concrete aggregates and crumb rubber. Journal of Cleaner Production, 165, 405–414.
  • Presti, D.L., 2013. Recycled tyre rubber modified bitumens for road asphalt mixtures: a literature review⋆. Construction and Building Materials, 49, 863–881.
  • Rangaraj, A., and Mukesh, P., 2020. An experimental investigation on partial replacement of bitumen using rubber tyre. Materials Today: Proceedings, 21, 460–464.
  • Sadeghnejad, M., and Shafabakhsh, G., 2017a. Estimation the fatigue number of stone mastic asphalt mixtures modified with Nano SiO2 and Nano TiO2. Journal of Rehabilitation in Civil Engineering, 5, 17–32.
  • Sadeghnejad, M., and Shafabakhsh, G., 2017b. Use of Nano SiO2 and Nano TiO2 to improve the mechanical behaviour of stone mastic asphalt mixtures. Construction and Building Materials, 157, 965–974.
  • Santagata, E., et al., 2012. Rheological characterization of bituminous binders modified with carbon nanotubes. Procedia - Social and Behavioral Sciences, 53, 546–555.
  • Sezavar, R., Shafabakhsh, G., and Mirabdolazimi, S.M., 2019. New model of moisture susceptibility of nano silica-modified asphalt concrete using GMDH algorithm. Construction and Building Materials, 211, 528–538.
  • Shafabakhsh, G., et al., 2020. Laboratory experiment on the effect of Nano SiO2 and TiO2 on short and long-term aging behavior of bitumen. Construction and Building Materials, 237, 117640.
  • Shafabakhsh, G. and Ani, O.J., 2015. Experimental investigation of effect of Nano TiO /SiO modified bitumen on the rutting and fatigue performance of asphalt mixtures containing steel slag aggregates. Construction and Building Materials, 98, 692–702.
  • Shafabakhsh, G. A., Sadeghnejad, M., and Alizadeh, S., 2023. Engineering the effect of nanomaterials on bitumen and asphalt mixture properties. A Review. The Baltic Journal of Road and Bridge Engineering, 18 (2), 1–31.
  • Shafabakhsh, G., Sadeghnejad, M., and Chelovian, A., 2015. Experimental study on creep behavior of stone mastic asphalt by using of nano Al2O3. Int. J. Sci. Eng. Res, 6 (10), 903–911.
  • Shafabakhsh, G., Sadeghnejad, M., and Ebrahimnia, R., 2021. Fracture resistance of asphalt mixtures under mixed-mode I/II loading at low-temperature: without and with Nano SiO2. Construction and Building Materials, 266, 120954.
  • Sun, L., Xin, X., and Ren, J., 2017. Asphalt modification using nano-materials and polymers composite considering high and low temperature performance. Construction and Building Materials, 133, 358–366.
  • Wang, Z., 2021. Performance of modified asphalt of rubber powder through tetraethyl orthosilicate (TEOS). Construction and Building Materials, 267, 121032.
  • Zhou, F., et al., 2017. Development of an IDEAL cracking test for asphalt mix design and QC/QA. Road Materials and Pavement Design, 18, 405–427.
  • Ziari, H., et al., 2020. Using the GMDH and ANFIS methods for predicting the crack resistance of fibre reinforced high RAP asphalt mixtures. Road Materials and Pavement Design, 22, 2248–2266.

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