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Research Article

Low-temperature rheological properties and micro-mechanism of DIBCH plasticizer modified bitumen

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Pages 1-11 | Received 22 May 2021, Accepted 06 Nov 2021, Published online: 22 Nov 2021

References

  • Aflaki, S., and Hajikarimi, P, 2012. Implementing viscoelastic rheological methods to evaluate low temperature performance of modified asphalt binders. Construction and Building Materials, 36, 110–118. Available from: <Go to ISI>://WOS:000310403900014.
  • Ashish, P.K., Singh, D., and Jain, R, 2020. Evaluating the effect of carbon nanotube on low temperature property of asphalt binder through dissipated energy-based approach. Journal of Materials in Civil Engineering, 32 (3), 04019376.
  • Baldofski, S., et al., 2018. Studies on the development of antibodies for the highly hydrophobic plasticizers dinch and deht. Analytical Biochemistry, 543, 90–96. Available from: <Go to ISI>://WOS:000426538100015.
  • Behnia, B., Buttlar, W., and Reis, H, 2018. Evaluation of low-temperature cracking performance of asphalt pavements using acoustic emission: A review. Applied Sciences-Basel, 8 (2), 306.
  • Bocque, M., et al., 2016. Petro-based and bio-based plasticizers: chemical structures to plasticizing properties. Journal of Polymer Science Part a-Polymer Chemistry, 54 (1), 11–33. Available from: <Go to ISI>://WOS:000366404700001.
  • Bui, T.T., et al., 2016. Human exposure, hazard and risk of alternative plasticizers to phthalate esters. Science of the Total Environment, 541, 451–467. Available from: <Go to ISI>://WOS:000365289300049.
  • Camacho, L., et al., 2020. Effects of intravenous and oral di(2-ethylhexyl) phthalate (dehp) and 20% intralipid vehicle on neonatal rat testis, lung, liver, and kidney. Food and Chemical Toxicology, 144, 111497.
  • Canestrari, F., and Ingrassia, L.P, 2020. A review of top-down cracking in asphalt pavements:causes, models, experimental tools and future challenges. Journal of Traffic and Transportation Engineering(English Edition), 7 (05), 541–572.
  • Chang, W., Wang, J., and Ma, Z, 2014. Development of environment-friendly non-toxic plasticizer cyclohexane dicarboxylic ester. Chemical Propellants & Polymeric Materials, 12 (03), 14–17 + 24.
  • Christensen, R.M, 1982. Theory of viscoelasticity: An introduction. New York: Academic Press.
  • Erkus, Y., Kok, B.V., and Yilmaz, M, 2020. Evaluation of performance and productivity of bitumen modified by three different additives. Construction and Building Materials, 261, 120553.
  • Farrar, M., Sui, C., and Salmans, S., 2019. Determining the low-temperature rheological properties of asphalt binder using a dynamic shear rheometer(dsr). Rep. FP.
  • Fei, Y., et al., 2014. Preparation of di (2-ethylhexyl) 1, 2-cyclohexane dicarboxylate by hydrogenation. Chemical Industry and Engineering Progress, 33 (11), 3057–3060.  + 3081.
  • Fini, E.H., et al., 2016. Investigating the effectiveness of liquid rubber as a modifier for asphalt binder. Road Materials and Pavement Design, 17 (4), 825–840. Available from: <Go to ISI>://WOS:000385670100003.
  • Fu, Z., et al., 2016. Laboratory investigation on the properties of asphalt mixtures modified with double-adding admixtures and sensitivity analysis. Journal of Traffic and Transportation Engineering(English Edition), 3 (05), 412–426.
  • Fu, Z., et al., 2017. Research on pavement performance of asphalt binder modified with plasticizer. Journal of Zhengzhou University (Engineering Science), 38 (03), 15–19.
  • Fu, Z., et al., 2018. Effects of plasticizer on road performance of asphalt mixture. Journal of Guangxi University (Natural Science Edition), 43 (04), 1625–1631.
  • Fu, Z., et al., 2021. Rheological properties of dioctyl adipate-modified asphalt binder. International Journal of pavement engineering, 1867855.
  • Jamarani, R., et al., 2018. How Green is your plasticizer? Polymers, 10 (8), 834.
  • Jia, P., et al., 2018. Plasticizers derived from biomass resources: A short review. Polymers, 10 (12), 1303.
  • Joohari, I.B., and Giustozzi, F, 2020. Chemical and high-temperature rheological properties of recycled plastics-polymer modified hybrid bitumen. Journal of Cleaner Production, 276, 123064.
  • Kawai, K., and Hagura, Y, 2012. Discontinuous and heterogeneous glass transition behavior of carbohydrate polymer-plasticizer systems. Carbohydrate Polymers, 89 (3), 836–841. Available from: <Go to ISI>://WOS:000305369200015.
  • Kong, Z., 2015. Performances study on asphalt modified by plasticizers. Masters's Thesis. Chang'an University, Xi'an, Shaanxi, China.
  • Kumar, S, 2019. Recent developments of biobased plasticizers and their effect on mechanical and thermal properties of poly(vinyl chloride): A review. Industrial & Engineering Chemistry Research, 58 (27), 11659–11672. Available from: <Go to ISI>://WOS:000475537000005.
  • Li, L., et al., 2020. Study on low-temperature cracking performance of asphalt under heat and light together conditions. Materials, 13 (7), 1541.
  • Liu, J., et al., 2017. Low temperature cracking analysis of asphalt binders and mixtures. Cold Regions Science and Technology, 141, 78–85. Available from: <Go to ISI>://WOS:000407693100008.
  • Liu, Q., Yin, Y., and Zeng, D, 2016. The preparation and properties of montmorillonite/dop modified asphalt. Journal of Changsha University of Science and Technology (Natural Science), 13 (03), 6–11.
  • Ma, F., et al., 2018. Impact of different kinds of plasticizers on asphalt mixture performance. Highway, 63 (09), 237–241.
  • Porto, M., et al., 2019. Bitumen and bitumen modification: A review on latest advances. Applied Sciences-Basel, 9 (4), 742.
  • Ruyin, W., et al., 2009. Morphology, mechanical properties, and durability of poly(lactic acid) plasticized with di(lsononyl) cyclohexane-1,2-dicarboxylate. Polymer Engineering and Science, 49 (12), 2414–2420. Available from: <Go to ISI>://INSPEC:11881286.
  • Schuetze, A., et al., 2017. Additional oxidized and alkyl chain breakdown metabolites of the plasticizer dinch in urine after oral dosage to human volunteers. Archives of Toxicology, 91 (1), 179–188. Available from: <Go to ISI>://WOS:000392320700010.
  • Schwedler, G., et al., 2020. Hexamoll (r) dinch and dphp metabolites in urine of children and adolescents in Germany. human biomonitoring results of the German environmental survey geres v, 2014-2017. International Journal of Hygiene and Environmental Health, 229, 113397.
  • Shen, W., 2017. Study on performance of plasticizer doa modified asphalt and mixture in high and low temperature. Masters's Thesis. Chang'an University, Xi'an, Shaanxi, China.
  • Tsantilis, L., Baglieri, O., and Santagata, E, 2018. Low-temperature properties of bituminous nanocomposites for road applications. Construction and Building Materials, 171, 397–403. Available from: <Go to ISI>://WOS:000432506200039.
  • Wang, M., et al., 2019. Rheological and aging behaviors of liquid rubber modified asphalt binders. Construction and Building Materials, 227, 116719.
  • Xiao, F., Amirkhanian, A.N., and Amirkhanian, S.N, 2011. Influence of carbon nanoparticles on the rheological characteristics of short-term aged asphalt binders. Journal of Materials in Civil Engineering, 23 (4), 423–431. Available from: <Go to ISI>://WOS:000289998800009.
  • Yang, X., 2015. Experimental investigation on the impact of plasticizer (atbc) on base asphalt. Masters's Thesis. Chang'an University, Xi'an, Shaanxi, China.
  • Yang, P., et al., 2016. Novel environmentally sustainable cardanol-based plasticizers: synthesis and properties. Polymer International, 65 (4), 464–472. Available from: <Go to ISI>://WOS:000372293200015.
  • Yu, J., et al., 2019. Effects of environmentally friendly plasticizers on high and low temperature performance of natural modified asphalt. Journal of Henan University of Science and Technology (Natural Science), 40 (04), 64–71.  + 8.
  • Zhang, Z., et al., 2021. Research progress of novel bio-based plasticizers and their applications in poly(vinyl chloride). Journal of Materials Science, 56 (17), 10155–10182. Available from: <Go to ISI>://WOS:000625056600002.

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