100
Views
0
CrossRef citations to date
0
Altmetric
Research Article

Environmental and mechanical effects of rubberised open-graded asphalt mixtures incorporating with titanium dioxide: a laboratory investigation

, , , &
Article: 2241604 | Received 01 Jul 2022, Accepted 24 Jul 2023, Published online: 11 Aug 2023

References

  • Bocci, E., et al., 2016. Durability of no oxidation effectiveness of pavement surfaces treated with photocatalytic titanium dioxide. Arabian Journal for Science and Engineering, 41, 4827–4833.
  • Cadorin, N.D.A., et al., 2021. Asphalt nanocomposite with titanium dioxide: mechanical, rheological and photoactivity performance. Construction and Building Materials, 289, 123178.
  • Dey, S., and Mehta, N., 2020. Automobile pollution control using catalysis. Resources, Environment and Sustainability, 2, 100006.
  • Ding, X., et al., 2019. Laboratory investigation of the recycled asphalt concrete with stable crumb rubber asphalt binder. Construction and Building Materials, 203 (APR.10), 552–557.
  • Figueiredo, L., et al., 2001. Towards the development of intelligent transportation systems, ITSC 2001. In: 2001 IEEE Intelligent Transportation Systems. Proceedings (Cat. No. 01TH8585), IEEE, 1206–1211.
  • Filho, P.G.T.M., et al., 2019. Rheological evaluation of asphalt binder 50/70 incorporated with titanium dioxide nanoparticles. Journal of Materials in Civil Engineering, 31, 04019235.
  • Geerlings, H., Klementschitz, R., and Mulley, C., 2006. Development of a methodology for benchmarking public transportation organisations: A practical tool based on an industry sound methodology. Journal of Cleaner Production, 14, 113–123.
  • Hassan, M.M., et al., 2011. Evaluation of nano–titanium dioxide additive on asphalt binder aging properties. Transportation Research Record, 2207, 11–15.
  • Hassan, M., et al., 2013. Sustainable photocatalytic asphalt pavements for mitigation of nitrogen oxide and sulfur dioxide vehicle emissions. Journal of Materials in Civil Engineering, 25 (3), 365–371.
  • Honggang, C., et al., 2015. Development and industrial application of the catalyzers for low-temperature hydrogenation hydrolysis of claus tail gas. Natural Gas Industry, 35, 88–93.
  • Hu, Z., et al., 2021. Developed photocatalytic asphalt mixture of open graded friction course for degrading vehicle exhaus. Journal of Cleaner Production, 279, 123453.36.
  • Hu, J., et al., 2022. Characteristics of highly reflective and fluorescent TiO2 quantum dots modified asphalt binder. Construction and Building Materials, 343, 128101.
  • Huang, J., et al., 2021a. Anti-rutting performance of the damping asphalt mixtures (dams) made with a high content of asphalt rubber (ar). Construction and Building Materials, 271, 121878.
  • Huang, J., et al., 2021b. Rheological properties of bituminous binder modified with recycled waste toner. Journal of Cleaner Production, 317, 128415.
  • Huang, J., et al., 2021c. Mix design and laboratory characterisation of rubberised mixture used as damping layer in pavements. International Journal of Pavement Engineering, 23, 2746–2760.
  • Huang, J., Kumar, G.S., and Sun, Y., 2021. Evaluation of workability and mechanical properties of asphalt binder and mixture modified with waste toner. Construction and Building Materials, 276, 122230.
  • Huang, J., and Sun, Y., 2020a. Effect of modifiers on the rutting, moisture-induced damage, and workability properties of hot mix asphalt mixtures. Applied Sciences, 10, 7145.
  • Huang, J., and Sun, Y., 2020b. Viscoelastic analysis of the damping asphalt mixtures (dams) made with a high content of asphalt rubber (ar). Advances in Civil Engineering, 2020, 1–12.
  • Innes, R., 1996. Regulating automobile pollution under certainty, competition, and imperfect information. Journal of Environmental Economics and Management, 31, 219–239.
  • JTG E20-2011, 2011. Standard test methods of bitumen and bituminous mixtures for highway engineering. Beijing: China Communications Press.
  • JTG F40-2004, 2004. Technical specification for construction of highway asphalt pavements. Beijing: Ministry of Transport of the People's Republic of China.
  • Khon, E., et al., 2013. Improving the catalytic activity of semiconductor nanocrystals through selective domain etching. Nano Letters, 13, 2016–2023.
  • Leng, Z., and Yu, H., 2016. Novel method of coating titanium dioxide on to asphalt mixture based on the breath figure process for air-purifying purpose. Journal of Materials in Civil Engineering, 28, 04015188.
  • Leng, Z., Yu, H., and Gao, Z., 2019. Study on air-purifying performance of asphalt mixture specimens coated with titanium dioxide using different methods. International Journal of Pavement Research and Technology, 2018, 1996-6814.
  • Liang, X., et al., 2019. Removal effect on stormwater runoff pollution of porous concrete treated with nanometer titanium dioxide. Transportation Research Part D: Transport and Environment, 73, 34–45.
  • Liu, X., et al., 2021. Separation of nh3/co2 from melamine tail gas with ionic liquid: process evaluation and thermodynamic properties modelling. Separation and Purification Technology, 274, 119007.
  • Mills, A., and Le Hunte, S., 1997. An overview of semiconductor photocatalysis. Journal of Photochemistry and Photobiology A: Chemistry, 108, 1–35.
  • Osborn, D., et al., 2014. Durability quantification of Ti[O.sub.2] surface coating on concrete and asphalt pavement. Journal of Materials in Civil Engineering, 26 (2), 331.
  • Sadeghnejad, M., and Shafabakhsh, G., 2004. Use of nano sio2 and nano tio2 to improve the mechanical behaviour of stone mastic asphalt mixtures. Construction and Building Materials, 157, 965–974.
  • Shafabakhsh, G., and Ani, O.J., 2015. Experimental investigation of effect of nano tio2/sio2 modified bitumen on the rutting and fatigue performance of asphalt mixtures containing steel slag aggregates. Construction and Building Materials, 98, 692–702.
  • Umar, M., and Aziz, H.A., 2013. Photocatalytic degradation of organic pollutants in water. Organic Pollutants-Monitoring, Risk and Treatment, 8, 196–197.
  • Van Dijk, H.A., 2012. Tail gas treatment of sour-sewgs co2 product. Public version.
  • Vorontsov, A.V., et al., 2003. Tio2 reactivation in photocatalytic destruction of gaseous diethyl sulfide in a coil reactor. Applied Catalysis. B, Environmental, 44 (1), 25–40.
  • Wang, M., et al., 2019. Enabling piezopotential in piezoelectric semiconductors for enhanced catalytic activities. Angewandte Chemie International Edition, 58, 7526–7536.
  • Weisbrod, G., 2008. Models to predict the economic development impact of transportation projects: historical experience and new applications. The Annals of Regional Science, 42, 519–543.
  • Wilcoxon, J.P., 2000. Catalytic photooxidation of pentachlorophenol using semiconductor nanoclusters. The Journal of Physical Chemistry B, 104, 7334–7343.
  • Wu, H., et al., 2021. Effect of TiO2/CeO2 on photocatalytic degradation capability and pavement performance of asphalt mixture with steel slag. Journal of Materials in Civil Engineering, 33 (9), 0899-1561.
  • Yan, K., et al., 2020. Laboratory performance of asphalt mixture with waste tyre rubber and apao modified asphalt binder. International Journal of Pavement Engineering, 23, 59–69.
  • Yu, H., et al., 2020. The NOx degradation performance of nano-TiO2 coating for asphalt pavement. Nanomaterials (Basel, Switzerland), 10 (5), 2079–4991.
  • Zhang, H.-l., et al., 2016. High and low temperature properties of nano-particles/polymer modified asphalt. Construction and Building Materials, 114, 323–332.
  • Zhang, W.G., and Wang, F., 2014. In experimental study on asphalt composite uv absorption anti-aging agent. Applied Mechanics and Materials, Trans Tech Publ, 89, 484–485.
  • Zheng, D., et al., 2019. Performance evaluation of high-elasticity asphalt mixture containing inorganic nano-titanium dioxide for applications in high altitude regions. Construction and Building Materials, 199, 594–600.
  • Zhou, X., et al., 2019. Piezophototronic effect in enhancing charge carrier separation and transfer in zno/batio3 heterostructures for high-efficiency catalytic oxidation. Nano Energy, 66, 104127.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.