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Research Article

Pavement performance and modification mechanisms of asphalt binder with nano-Al2O3

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Article: 2136373 | Received 07 Mar 2022, Accepted 10 Oct 2022, Published online: 27 Oct 2022

References

  • AASHTO T 313-12, 2016. Standard method of test for determining the flexural creep stiffness of asphalt binder using the bending beam rheometer. Washington, DC: AASHTO T 313-12.
  • AASHTO T 315, 2016. Standard method of test for determining the rheological properties of asphalt binder using a dynamic shear rheometer (DSR). Washington, DC: AASHTO T 315.
  • AASHTO T 350-2019, 2019. Standard method of test for multiple stress creep recovery (MSCR) test of asphalt binder using a dynamic shear rheometer. Washington, DC: AASHTO TP-101.
  • AASHTO T 360-16, 2016. Standard method of test for determining asphalt binder bond strength by means of the binder bond strength (BBS) test. Washington, DC: AASHTO T 360-16.
  • Adhikari, R., et al., 2005. Structure and properties of nanocomposites based on SBS block copolymer and alumina. Macromolecular Symposia, 231, 116–124.
  • Al-Mansob, R. A., et al., 2017. The performance of epoxidised natural rubber modified asphalt using nano alumina as additive. Construction and Building Materials, 155, 680–687.
  • Al-Sabaeei, A. M., Napiah, M. B., and Sutanto, M. H., 2020. Influence of nanosilica particles on the high-temperature performance of waste denim fibre-modified bitumen. International Journal of Pavement Engineering, 9, 1–14.
  • Al-Sabaeei, A. M., Napiah, M., and Sutanto, M., 2021. Physicochemical, rheological and microstructural properties of nano-silica modified Bio-asphalt. Construction and Building Materials, 297 (2), 123772.
  • Ali, S. I. A., et al., 2016. Performance evaluation of Al2O3 nanoparticle-modified asphalt binder. Ukrainian Mathematical Journal, 56 (10), 1646–1652.
  • Ashish, P. K., and Singh, D., 2019. Effect of carbon nano tube on performance of asphalt binder under creep-recovery and sustained loading conditions. Construction and Building Materials, 215, 523–543.
  • ASTM D113-17, 2017. Standard test method for ductility of asphalt materials. West Conshohocken, PA, USA: ASTM International.
  • ASTM D2872-19, 2019. Standard test method for effect of heat and air on a moving film of asphalt (rolling thin-film oven test). West Conshohocken, PA: ASTM International.
  • ASTM D36/D36M-14, 2020. Standard test method for softening point of bitumen (ring-and-ball apparatus). West Conshohocken, PA, USA: ASTM International.
  • ASTM D4402-06, 2006. Standard test method for viscosity apparent determination of asphalt at elevated temperatures using a rotational viscometer. West Conshohocken, PA, USA: ASTM International.
  • ASTM D5/D5M-20, 2020. Standard test method for penetration of bituminous materials. West Conshohocken, PA, USA: ASTM International.
  • Babagoli, R., 2020. Laboratory investigation of the performance of binders and asphalt mixtures modified by carbon nano tube, poly phosphoric acid, and styrene butadiene rubber – ScienceDirect. Construction and Building Materials, 275, 122178.
  • Bala, N., Napiah, M., and Kamaruddin, I., 2020. Nanosilica composite asphalt mixtures performance-based design and optimisation using response surface methodology. The International Journal of Pavement Engineering, 21, 29–40.
  • Bhat, F. S., and Mir, M. S., 2019. Performance evaluation of nanosilica-modified asphalt binder. Innovative Infrastructure Solutions, 4, 63.1–63.10.
  • Bhat, F. S., and Mir, M. S., 2020. A study investigating the influence of nano Al2O3 on the performance of SBS modified asphalt binder. Construction and Building Materials, 271, 121499.
  • Bowers, B. F., et al., 2014. Investigation of reclaimed asphalt pavement blending efficiency through GPC and FTIR. Construction & Building Materials, 50, 517–523.
  • Charvani, S., et al., 2018. Preparation characterisation of alumina nanocomposites. Materials Today: Proceedings, 5 (13), 26817–26822.
  • Cong, P., Guo, X., and Mei, L., 2020. Investigation on rejuvenation methods of aged SBS modified asphalt binder. Fuel, 279 (3), 118–556.
  • Doh, Y. S., Amirkhanian, S. N., and Kim, K. W., 2008. Analysis of unbalanced binder oxidation level in recycled asphalt mixture using GPC. Construction and Building Materials, 22 (6), 1253–1260.
  • El-Boubbou, Kheireddine, 2018. Magnetic iron oxide nanoparticles as drug carriers: clinical relevance. Nanomedicine: Nanotechnology, Biology, and Medicine, 13 (8), 953–971.
  • Ghanoon, S. A., Tanzadeh, J., and Mirsepahi, M., 2019. Laboratory evaluation of nano-silica modification on rutting resistance of asphalt binder. Construction and Building Materials, 223, 1074–1082.
  • Han, N. F., Zhou, D. J., and Tang, X. D., 2011. Effect of nano calcium carbonate and montmorillonite on properties of styrene-butadiene-styrene copolymer modified asphalt. Applied Mechanics and Materials, 99-100, 1035–1038.
  • Kambham, B. S., Ram, V. V., and Raju, S., 2019. Investigation of laboratory and field aging of bituminous concrete with and without anti-aging additives using FESEM and FTIR. Construction and Building Materials, 222, 193–202.
  • Kashi, E., and Saberi, P., 2018. Evaluating oxide shell performance of Hot-rolled steel as an additive in bitumen. Iranian Nanotechnology Society, 14 (3), 229–239.
  • Melo, J. V. S., Triches, G., and de Rosso, L. Torres, 2018. Experimental evaluation of the influence of reinforcement with multi-walled carbon nanotubes (MWCNTs) on the properties and fatigue life of hot mix asphalt. Construction and Building Materials, 162, 369–382.
  • Nikhil, Kamboj, et al., 2018. Nanostructural evolution in mesoporous networks using in situ high-speed temperature scanner. Ceramics International, 44 (11), 12265–12272.
  • Pirmohammad, S., Shokorlou, Y. M., and Amani, B., 2019. Experimental investigation of fracture properties of asphalt mixtures modified with nano Fe2O3 and carbon nanotubes. Road Materials and Pavement Design, 1, 1–23.
  • Ren, J., et al., 2020a. Characterization and prediction of rutting resistance of rock asphalt mixture under the coupling effect of water and high-temperature. Construction and Building Materials, 254, 119316.
  • Ren, J., et al., 2020b. Investigating the pavement performance and aging resistance of modified bio-asphalt with nano-particles. PLoS One, 15 (9), e0238817.
  • Ren, J., et al., 2021a. Fatigue behaviour of rock asphalt concrete considering moisture, high-temperature, and stress level. International Journal of Pavement Engineering, 1–11.
  • Ren, J., et al., 2021b. High-fluidization, early strength cement grouting material enhanced by nano-SiO2: formula and mechanisms. Materials, 14, 6144.
  • Ren, J., et al., 2022. Fatigue prediction of semi-flexible composite mixture based on damage evolution. Construction and Building Materials, 318, 126004.
  • Ren, J., Zang, G., and Xu, Y., 2019. Formula and pavement properties of a composite modified bioasphalt binder considering performance and economy. Journal of Materials in Civil Engineering, 31 (10), 04019243.
  • Rezaei, S., Ziari, H., and Nowbakht, S., 2016. High-temperature functional analysis of bitumen modified with composite of nano-SiO2 and styrene butadiene styrene polymer. Petroleum Science and Technology, 34 (13), 1195–1203.
  • Said, S., Mikhail, S., and Riad, M., 2019. Recent progress in preparations and applications of meso-porous alumina. Materials Science for Energy Technologies, 2 (2), 288–297.
  • Said, S., Mikhail, S., and Riad, M., 2020. Recent processes for the production of alumina nano-particles. Materials Science for Energy Technologies, 3, 344–363.
  • Shafabakhsh, G., Bidokhti, M. A., and Divandari, H., 2020. Evaluation of the performance of SBS/nano Al2O3 composite-modified bitumen at high temperature. Road Materials and Pavement Design, 1468-0629, 2164–7402.
  • Sukhija, M., et al., 2021. Laboratory study on the suitability of nano-silica as a modifier for asphalt binders. Construction and Building Materials.Volume, 302, 0950–0618.
  • Sun, L., 2012. Nanomaterial modified asphalt and Its road performance. Beijing: Scientific Press.
  • Sun, L., Wang, Y., and Zhang, Y., 2014. Aging mechanism and effective recycling ratio of SBS modified asphalt. Construction and Building Materials, 70, 26–35.
  • Sun, L., Xin, X., and Ren, J., 2017a. Asphalt modification using nano-materials and polymers composite considering high and low temperature performance. Construction and Building Materials, 133, 358–366.
  • Sun, L., Xin, X., and Ren, J., 2017b. Inorganic nanoparticle-modified asphalt with enhanced performance at high temperature. Journal of Materials in Civil Engineering, 29 (3), 0401–6227.
  • Wang, C., Chen, Y., and Cao, W., 2019. A chemo-rheological approach to the healing characteristics of asphalt binders under short-and long-term oxidative aging. Construction and Building Materials, 221, 553–561.
  • Wang, S., and Huang, W., 2021. Investigation of aging behavior of terminal blend rubberized asphalt with SBS polymer. Construction and Building Materials, 267, 0950–0618.
  • Wang, Y., Sun, L., and Zhou, J., 2017. Pavement performance evaluation of recycled styrene–butadiene–styrene-modified asphalt mixture. International Journal of Pavement Engineering, 18 (5), 404–413.
  • Xiao, P., et al., 2017. Aging characteristics of rubber modified asphalts in different environmental factors combinations. Applied Sciences, 7, 806.
  • Xu, X., et al., 2019. Physical properties and anti-aging characteristics of asphalt modified with nano-zinc oxide powder. Construction and Building Materials, 224 (10), 732–742.
  • Yao, H., Dai, Q., and You, Z., 2015. Fourier transform infrared spectroscopy characterization of aging-related properties of original and nano-modified asphalt binders. Construction and Building Materials, 101, 1078–1087.
  • Ye, W., et al., 2019. Analysis of mechanism and time-temperature equivalent effects of asphalt binder in short-term aging. Construction and Building Materials, 215, 823–838.
  • You, Z., et al., 2011. Nanoclay-modified asphalt materials: preparation and characterization. Construction and Building Materials, 25 (2), 1072–1078.
  • Zhang, H., et al., 2018. Evaluation of aging behaviors of asphalt binders through different rheological indices. Fuel, 221, 78–88.
  • Zhao, S., et al., 2014. Characterizing rheological properties of binder and blending efficiency of asphalt paving mixtures containing RAS through GPC. Journal of Materials in Civil Engineering, 26 (5), 941–946.
  • Zhao, X., et al., 2016. Rheological and structural evolution of SBS modified asphalts under natural weathering. Fuel, 184, 242–247.

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