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Awarded Papers

Eco-friendly paving materials using waste PET and reclaimed asphalt pavement

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Pages 237-247 | Received 14 Mar 2018, Accepted 13 Aug 2018, Published online: 07 Mar 2019

References

  • Al-Qadi I, Elseifi M, Carpenter S. Reclaimed asphalt pavement: a literature review. Urbana (IL): Illinois Center for Transportation; 2007.
  • North Carolina Department of Transportation. NCDOT. FHWA/AASHTO RAP ETG survey. 2007.
  • Materials Engineering and Research Office MTO. RAP usage survey. 2008.
  • Kodippily S, Holleran G, Henning TFP. Deformation and cracking performance of recycled asphalt paving mixes containing polymer-modified binder. Road Mater Pavement Des. 2017;18(2):425–439.
  • Hassani A, Ganjidoust H, Maghanaki AA. Use of plastic waste (poly-ethylene terephthalate) in asphalt concrete mixture as aggregate replacement. Waste Manage Res. 2005;23:322–327.
  • Yildirim Y. Polymer modified asphalt binders. Constr Build Mater. 2007;21(1):66–72.
  • Padhan RK, Gupta AA, Badoni RP, et al. Improved performance of a reactive polymer based bituminous mixes–effect of cross linking agent. Road Mater Pavement Des. 2015;16(2):300–315.
  • Zia KM, Bhatti HN, Bhatti IA. Methods for polyurethane and polyurethane composites, recycling and recovery: a review. Reactive Funct Polym. 2007;67(8):675–692.
  • Firas A, Dumitru P. Recycling of PET. Eur Polym J. 2005;41(7):1453–1477.
  • Garcia-Morales M, Partal P, Navarro FJ, et al. Effect of waste polymer addition on the rheology of modified bitumen. Fuel. 2006;85:936–943.
  • Ameri M, Nasr D. Properties of asphalt modified with devulcanized polyethylene terephthalate. Pet Sci Technol. 2016;34:1424–1430.
  • Gürü M, Çubuk MK, Arslan D, et al. An approach to the usage of polyethylene terephthalate (PET) waste as roadway pavement material. J Hazard Mater. 2014;279:302–310.
  • Padhan RK, Gupta AA, Badoni RP, et al. Poly(ethylene terephthalate) waste derived chemicals as an antistripping additive for bitumen—an environment friendly approach for disposal of environmentally hazardous material. Polym Degrad Stabil. 2013;98:2592–2601.
  • Leng Z, Sreeram A, Padhan RK, et al. Value-added application of waste PET based additives in bituminous mixtures containing high percentage of reclaimed asphalt pavement (RAP). J Clean Prod. 2018;196:615–625.
  • Li DD, Greenfield ML. Chemical compositions of improved model asphalt systems for molecular simulations. Fuel. 2014;115:347–356.
  • Oldenburg TBP, Huang H, Donohoe P, et al. High molecular weight aromatic nitrogen and other novel hopanoid-related compounds in crude oils. Org Geochem. 2004;35(6):665–678.
  • Strausz OP, Peng PA, Murgich J. About the colloidal nature of asphaltenes and the MW of covalent monomeric units. Energy Fuel. 2002;16(4):809–822.
  • Lira-Galeana C, Hammami A. Wax precipitation from petroleum fluids: A review. Dev Pet Sci. 2000;40:557–608.
  • Simanzhenkov V, Idem R. Crude oil chemistry. New York (NY): Marcel Dekker Inc; 2003.
  • Li DD, Greenfield ML. High internal energies of proposed asphaltene structures. Energy Fuel. 2011;25(8):3698–3705.
  • Koopmans MP, Leeuw JWD, Lewan MD, et al. Impact of dia- and catagenesis on sulphur and oxygen sequestration of biomarkers as revealed by artificial maturation of an immature sedimentary rock. Org Geochem. 1996;25(5–7):391–426.
  • Koopmans MP, Leeuw JWD, Damsté JSS. Novel cyclised and aromatised diagenetic products of β-carotene in the green river shale. Org Geochem. 1997;26(97):451–466.
  • Marynowski L, Rospondek MJ, Reckendorf RMZ, et al. Phenyldibenzofurans and phenyldibenzothiophenes in marine sedimentary rocks and hydrothermal petroleum. Org Geochem. 2002;33(7):701–714.
  • Cai C, Zhang C, Cai L, et al. Origins of palaeozoic oils in the Tarim basin: evidence from sulfur isotopes and biomarkers. Chem Geol. 2009;268(3–4):197–210.
  • Mullins OC. The modified yen model. Energy Fuel. 2010;24(4):2179–2207.
  • Dickie JP, Yen TF. Macrostructures of the asphaltic fractions by various instrumental methods. Anal Chem.1967;39:727–734.
  • Bristow GM, Watson WF. Cohesive energy densities of polymers. Part 2-cohesive energy densities from viscosity measurements. Trans Faraday Soc. 1958;54:1742–1747.
  • Gómez-Meijide B, Pérez I. Effects of the use of construction and demolition waste aggregates in cold asphalt mixtures. Constr Build Mater. 2014;51:267–277.
  • Kok BV, Yilmaz M. The effects of using lime and styrene–butadiene–styrene on moisture sensitivity resistance of hot mix asphalt. Constr Build Mater. 2009;23(5):1999–2006.
  • Moreno-navarro F, Sol M, Rubio-Gamez C, et al. Reuse of thermal power plant slag in hot bituminous mixes. Constr Build Mater. 2013;49:144–150.
  • Akbulut H, Gurer C, Cetin S. Use of volcanic aggregates in asphalt pavement mixes. Proc Inst Civil Eng Transp. 2011;164(2):111–123.
  • Little DN, Allen DH, Bhasin A. Chemical and mechanical processes influencing adhesion and moisture damage in hot mix asphalt pavements. In: Modeling and Design of Flexible Pavements and Materials. Cham: Springer; 2018. p. 123–186.
  • Hot Mix Asphalt Materials. Mixture design and construction, national center for asphalt technology. 1991 ;225.

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