280
Views
1
CrossRef citations to date
0
Altmetric
Research Article

Effects of filler concentration on indirect tensile (IDT) cracking indices in hot mix asphalt at intermediate temperature

&
Article: 2043311 | Received 20 Sep 2021, Accepted 11 Feb 2022, Published online: 13 Mar 2022

References

  • AASHTO, 2004a. Standard specification for superpave volumetric mix design AASHTO MP2-02. Washington, DC.
  • AASHTO, 2004b. Standard method of test for specific gravity of semi-solid asphalt materials. AASHTO T228. AASHTO.
  • AASHTO, 2009a. Resistance of coarse aggregate to degradation by abrasion in the micro-deval apparatus AASHTO T 327. Washington, DC.
  • AASHTO, 2009b. Viscosity determination of asphalt binder using rotational viscometer AASHTO T 316-11. Washington, DC.
  • AASHTO, 2010a. Resistance to degradation of small-size coarse aggregate by abrasion and impact in the los angeles machine AASHTO T 96-02 (Vol. 20001). Washington, DC.
  • AASHTO, 2010b. Softening point of bitumen (ring-and-ball apparatus) AASHTO T53-09 (Vol. 20001). Washington, DC.
  • AASHTO, 2010c. Penetration of bituminous materials AASHTO T 49-07. Washington, DC.
  • AASHTO, 2010d. Ductility of asphalt materials AASHTO T51-09. Washington, DC.
  • AASHTO, 2011. Specific gravity and absorption of coarse aggregate AASHTO T 85 (Vol. 20001). Washington, DC.
  • AASHTO, 2016. Standard method of test for bulk specific gravity (G mb) of compacted asphalt mixtures using saturated surface-dry specimens AASHTO T 166. Washington, DC.
  • AASHTO, 2020. Standard method of test for theoretical maximum specific gravity (G mm) and density of asphalt mixtures AASHTO T 209. Washington, DC.
  • Akbulut, H., et al., 2012. Investigation of using granite sludge as filler in bituminous hot mixtures. Construction and Building Materials, 36, 430–436.
  • Al-Hdabi, A., 2016. Laboratory investigation on the properties of asphalt concrete mixture with Rice Husk Ash as filler. Construction and Building Materials, 126, 544–551.
  • Anderson, D.A. and Goetz, W.H., 1973. Mechanical behavior and reinforcement of mineral filler-asphalt mixtures. Journal of the Association of Asphalt Paving Technologists, 42, 37–66.
  • ASTM, 2000. Standard specification for mineral filler for bituminous paving mixtures. ASTM D242. West Conshohocken, PA, USA.
  • ASTM, 2014. Standard test method for specific gravity of mineral filler by helium pycnometer. ASTM D5550. West Conshohocken, PA, USA.
  • ASTM, 2019. Standard test method for determination of cracking tolerance index of asphalt mixture using the indirect tensile cracking test at intermediate temperature. ASTM D8225. West Conshohocken, PA, USA.
  • Apeagyei, A. K., Buttlar, W. G., and Dempsey, B. J. 2006. Moisture damage evaluation of asphalt mixtures using AASHTO T283 and DC(T) fracture test. 10th International Conference on Asphalt Pavements, August 12–17, Quebec City, Canada, Vol. 1, 740–751.
  • Bennert, T., Haas, E., and Wass, E., 2018. Indirect tensile test (IDT) to determine asphalt mixture performance indicators during quality control testing in New Jersey. Transportation Research Record, 2672 (28), 394–403.
  • Brunauer, S., Emmett, P. H., and Teller, E., 1938. Adsorption of gases in multimolecular layers. Journal of the American Chemical Society, 60 (2), 309–319.
  • Chen, M., Lin, J., and Wu, S., 2011. Potential of recycled fine aggregates powder as filler in asphalt mixture. Construction and Building Materials, 25 (10), 3909–3914.
  • Chen, Y., et al., 2020. Role of mineral filler in asphalt mixture. Journal of Road Materials and Pavement Design, 23, 247–286.
  • Choudhary, J., Kumar, B., and Gupta, A., 2020. Utilization of solid waste materials as alternative fillers in asphalt mixes: A review. Construction and Building Materials, 234, 117271.
  • Delaporte, B., et al., 2007. Linear viscoelastic properties of bituminous materials: from binders to mastics (with discussion). Journal of the Association of Asphalt Paving Technologists, 76, 455–494.
  • Faruk, A.N., et al., 2014. Using the fracture energy index concept to characterize the HMA cracking resistance potential under monotonic crack testing. International Journal of Pavement Research Technology, 7 (1), 40–48.
  • Fil, B.A., Özmetin, C., and Korkmaz, M., 2014. Characterization and electrokinetic properties of montmorillonite. Bulgarian Chemical Communications, 46 (2), 258–263.
  • Fini, E.H., et al., 2011. Chemical characterization of biobinder from swine manure: sustainable modifier for asphalt binder. Journal of Materials in Civil Engineering, 23 (11), 1506–1513.
  • Guo, M. and Tan, Y., 2019. Interaction between asphalt and mineral fillers and its correlation to mastics’ viscoelasticity. International Journal of Pavement Engineering, 22 (1), 1–10.
  • Huang, B., Shu, X., and Chen, X., 2007. Effects of mineral fillers on hot-mix asphalt laboratory-measured properties. International Journal of Pavement Engineering, 8 (1), 1–9.
  • Kaseer, F., et al., 2018. Development of an index to evaluate the cracking potential of asphalt mixtures using the semi-circular bending test. Construction and Building Materials, 167, 286–298.
  • Kim, H., Wagoner, M. P., and Buttlar, W. G., 2009. Micromechanical fracture modeling of asphalt concrete using a single-edge notched beam test. Materials Structures, 42 (5), 677–689.
  • Mallick, R.B., et al., 2000. A rational approach of specifying the voids in the mineral aggregate for dense-graded hot-mix asphalt. (Ed.),^(Eds.). 79th Annual Meeting of the Transportation Research Board.
  • Mansour, E., 2012. Semi-quantitative analysis for FTIR spectra of Al2O3-PbO-B2O3-SiO2 glasses. Journal of Non-crystalline Solids, 358 (3), 454–460.
  • Modarres, A., Rahmanzadeh, M., and Ayar, P., 2015. Effect of coal waste powder in hot mix asphalt compared to conventional fillers: mix mechanical properties and environmental impacts. Journal of Cleaner Production, 91, 262–268.
  • Montepara, A., et al., 2011. The role of fillers on cracking behavior of mastics and asphalt mixtures. Journal of the Association of Asphalt Paving Technologists, 80, 161–192.
  • Nemati, R., et al., 2019. Development of a rate-dependent cumulative work and instantaneous power-based asphalt cracking performance index. Road Materials and Pavement Design, 20 (sup1), S315–S331.
  • Oh, S., Hyun, C.-U., and Park, H.-D., 2017. Near-infrared spectroscopy of limestone ore for CaO estimation under dry and wet conditions. Minerals, 7 (10), 193.
  • Ozer, H., et al., 2016. Development of the fracture-based flexibility index for asphalt concrete cracking potential using modified semi-circle bending test parameters. Construction and Building Materials, 115, 390–401.
  • Pérez-Jiménez, F., et al., 2013. Analysis of the mechanical behaviour of bituminous mixtures at low temperatures. Construction and Building Materials, 46, 193–202.
  • Prowell, B.D., Zhang, J., and Brown, E.R., 2005. Aggregate properties and the performance of superpave-designed hot mix asphalt. Vol. 539. Washington, DC: Transportation Research Board.
  • Riccardi, C., et al., 2017. Fatigue comparisons of mortars at different volume concentration of aggregate particles. International Journal of Fatigue, 104, 416–421.
  • Seitllari, A., Lanotte, M.A., and Kutay, M.E., 2019. Calibration of the MEPDG rutting model: issues and consequences on rutting prediction. (Ed.),^(Eds.). 98th Annual Meeting, Washington DC.
  • Seitllari, A., et al., 2022. Assessment of cracking performance indices of asphalt mixtures at intermediate temperatures. International Journal of Pavement Engineering, 23 (1), 70–79.
  • Walubita, L.F., et al., 2013. Laboratory hot-mix asphalt cracking testing: evaluation of three repeated loading crack tests. Journal of the Transportation Research Board, 2373 (1), 81–88.
  • Witczak, M.W., 2002. Simple performance test for superpave mix design. Vol. 465. Washington, DC: Transportation Research Board.
  • Wu, Z., et al., 2005. Fracture resistance characterization of superpave mixtures using the semi-circular bending test. Journal of ASTM International, 2 (3), 1–15.
  • Zhou, F., et al., 2016. Experimental design for field validation of laboratory tests to assess cracking resistance of asphalt mixtures: an expermental design. Washington, DC: (No. NCHRP Project 9-57). T. N. A. Press.
  • Zhou, F., et al., 2017. Development of an IDEAL cracking test for asphalt mix design and QC/QA. Road Materials and Pavement Design, 18 (sup4), 405–427.
  • Zhu, F., et al., Comprehensive evaluation of low-temperature fracture indices for asphalt mixtures. Road Materials and Pavement Design, 18, 467–490.

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.