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Research Article

Rutting and surface-initiated cracking mechanisms of semi-flexible pavements with cement asphalt emulsion pastes

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Article: 2024187 | Received 21 Sep 2021, Accepted 25 Dec 2021, Published online: 09 Jan 2022

References

  • AASHTO TP62-07., 2007. Determining dynamic modulus of hot-mix asphalt concrete mixtures. AASHTO, Washington, DC.
  • Afonso, M. L., et al., 2016. Development of a semi-flexible heavy duty pavement surfacing incorporating recycled and waste aggregates - Preliminary study. Construction and Building Materials, 102, 155–161.
  • AI-Qadi, I. L., Gouru, H., and Weyers, R. E., 1994. Asphalt portland cement concrete composite laboratory evaluation. Journal of Transportation Engineering, ASCE, 120 (1), 94–108.
  • Akbulut, H., and Aslantas, K, 2005. Finite element analysis of stress distribution on bituminous pavement and failure mechanism. Materials and Design, 26 (4), 383–387.
  • Al-Qadi, I. L., et al., 2004. The Virginia SMART ROAD: The impact of pavement instrumentation on understanding pavement performance. Journal of the Association of Asphalt Paving Technologists, 73, 427.
  • Al-Qadi, I.L., and Wang, H, 2009. Evaluation of pavement damage Due To New tire sesigns. Security (ICT-R), 59, 74.
  • Al-Qadi, Imad L., et al., 2005. Effects of tire configurations on pavement damage. Journal of the Association of Asphalt Paving Technologists, 74 (1), 921–961.
  • Alae, M., et al., 2020. Effects of layer interface conditions on top-down fatigue cracking of asphalt pavements. International Journal of Pavement Engineering, 8436, 1–9.
  • Alae, M., et al., 2021. Viscoelastic analysis of surface responses in flexible pavements under different loading conditions. Road Materials and Pavement Design, 1–23. https://doi.org/10.1080/14680629.2021.1963816.
  • An, S., et al., 2018. Laboratory and field evaluation of a novel cement grout asphalt composite. Journal of Materials in Civil Engineering, 30 (8), 04018179.
  • Assogba, O.C., et al., 2020. Finite-Element simulation of instrumented asphalt pavement response under moving vehicular load. International Journal of Geomechanics, 20 (3), 04020006.
  • ASTM D6931, 2011. Standard Test Method for Indirect Tensile (IDT) Strength of Bituminous Mixtures, American Society for Testing and Materials Standard. West Conshohocken, PA, USA.
  • Bharath, G., et al., 2020. Laboratory and field evaluation of cement grouted bituminous mixes. Road Materials and Pavement Design, 21 (6), 1694–1712.
  • Cai, J., et al., 2017. Comprehensive service properties evaluation of composite grouting materials with high-performance cement paste for semi-flexible pavement. Construction and Building Materials, 153, 544–556.
  • Cai, X., et al., 2020. Damage analysis of semi-flexible pavement material under axial compression test based on acoustic emission technique. Construction and Building Materials, 239, 117773.
  • Cao, D., Zhao, Y., Liu, W., et al., 2019. Comparisons of asphalt pavement responses computed using layer properties back calculated from dynamic and static approaches. Road Materials and Pavement Design, 20 (5), 1114–1130.
  • Cihackova, P., et al., 2015. Performance characteristics of the open-graded asphalt concrete filled with a special cement grout. The Baltic Journal of Road and Bridge Engineering, 10 (4), 316–324.
  • Corradini, A., et al., 2017. Improved understanding of grouted mixture fatigue behavior under indirect tensile test configuration. Construction and Building Materials, 155, 910–918.
  • Deacon, J. A., et al., 2002. Analytically based approach to rutting prediction. Transportation Research Record, 1806 (1), 9–18.
  • Dessouky, S.H., Al-Qadi, I.L., and Yoo, P.J, 2014. Full-depth flexible pavement responses to different truck tyre geometry configurations. International Journal of Pavement Engineering, 15 (6), 512–520. https://doi.org/10.1080/10298436.2013.775443
  • Ding, Q.J., et al., 2010. The performance analysis of semi-flexible pavement by the volume parameter of matrix asphalt mixture. Advanced Materials Research, 168–170, 351–356.
  • Elseifi, M.A., Al-Qadi, I.L., and Yoo, P.J, 2006. Viscoelastic modeling and field validation of flexible pavements. Journal of Engineering Mechanics, 132 (2), 172–178.
  • Fang, B., Xu, T., and Shi, S, 2015. Laboratory study on cement slurry formulation and Its strength mechanism for semi-flexible pavement. Journal of Testing and Evaluation, 44 (2), 20150230.
  • Gong, M., et al., 2019. Evaluation on the cracking resistance of semi-flexible pavement mixture by laboratory research and field validation. Construction and Building Materials, 207, 387–395.
  • Hasan, M., and Sugiarto, S, 2021. Determining the properties of semi-flexible pavement using waste tire rubber powder and natural zeolite. Construction and Building Materials, 266, 121199.
  • Hou, S., et al., 2017. Aggregate gradation influence on grouting results and mix design of asphalt mixture skeleton for semi-flexible pavement. Journal of Testing and Evaluation, 45 (2), 591–600.
  • Huang, B., Shu, X., and Li, G, 2005. Laboratory investigation of portland cement concrete containing recycled asphalt pavements. Cement and Concrete Research, 35 (10), 2008–2013.
  • Kaseer, F., et al., 2017. Stiffness characterization of asphalt mixtures with high recycled material content and recycling agents. Transportation Research Record, 2633 (1), 58–68.
  • 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, J., Roque, R., and Byron, T, 2009. Viscoelastic analysis of flexible pavements and its effects on top-down cracking. Journal of Materials in Civil Engineering, 21 (7), 324–332.
  • Kong, X., et al., 2014. Influences of temperature on mechanical properties of cement asphalt mortars. Material and Structure, 47 (1–2), 285–292.
  • Ling, T.Q., et al., 2010. Research on performance of water-retention and temperature-fall semi-flexible pavement material. China Journal of Highway and Transport, 23 (2), 7-11.
  • Luo, S., et al., 2018. Open-graded asphalt concrete grouted by latex modified cement mortar. Road Materials and Pavement Design, 0 (0), 1–17.
  • Luo, S., et al., 2020. Open-graded asphalt concrete grouted by latex modified cement mortar. Road Materials and Pavement Design, 21 (1), 61–77.
  • Ma, T., et al., 2015. Laboratory performance characteristics of high modulus asphalt mixture with high-content RAP. Construction and Building Materials, 101, 975–982.
  • Monismith, C. L., Popescu, L., and Harvey, J.T, 2006. Rut depth estimation for mechanistic-empirical pavement design using simple shear test results. Journal of the Association of Asphalt Paving Technologists, AAPT, 75, 1294–1338.
  • Pei, J., et al., 2016. Design and performance validation of high-performance cement paste as a grouting material for semi-flexible pavement. Construction and Building Materials, 126, 206–217.
  • Pratelli, C., et al., 2018. Preliminary in-situ evaluation of an innovative, semi-flexible pavement wearing course mixture using fast falling weight deflectometer. Materials, 11 (4), 1–13.
  • Qiang, W., et al., 2011. Strength mechanism of cement-asphalt mortar. Journal of Material in Civil Engineering. Eng, 23, 9.
  • Saboo, N., et al., 2019. Development of hierarchical ranking strategy for the asphalt skeleton in semi-flexible pavement. Construction and Building Materials, 201, 149–158.
  • Salama, H.K., Chatti, K., and Lyles, R.W, 2006. Effect of heavy multiple axle trucks on flexible pavement damage using in-service pavement performance data. Journal of Transportation Engineering, 132 (10), 763–770.
  • Setyawan, A., 2006. Development of semi-flexible heavy-duty pavements. Ph.D. Thesis. University of Leeds.
  • Setyawan, A, 2009. Design and properties of hot mixture porous asphalt for semi-flexible pavement applications. Media Tek Sipil, 5 (2), 41–46.
  • Setyawan, A., 2013. Asessing the compressive strength properties of semi-flexible pavements. Procedia Engineering, 54, 863–874.
  • Toraldo, E, 2013. Comparative laboratory investigation into pavement materials for road tunnels. Road Materials and Pavement Design, 14 (2), 310–324.
  • Wang, H., and Al-Qadi, I.L, 2011. Impact quantification of wide-base tire loading on secondary road flexible pavements. Journal of Transportation Engineering, 137 (9), 630–639.
  • Yang, B., and Weng, X, 2015. The influence on the durability of semi-flexible airport pavement materials to cyclic wheel load test. Construction and Building Materials, 98, 171–175.
  • Yoo, P.J., et al., 2006. Flexible pavement responses to different loading amplitudes considering layer interface condition and lateral shear forces. International Journal of Pavement Engineering, 7 (1), 73–86.
  • Zarei, S., et al., 2020. Experimental analysis of semi-flexible pavement by using an appropriate cement asphalt emulsion paste. Construction and Building Materials, 230, 116994.
  • Zhang, H., et al., 2019. Study on the mechanical performance and application of the composite cement–asphalt mixture. International Journal of Pavement Engineering, 20 (1), 44–52.
  • Zhang, H., Meng L., and Zhang, G., 2017a. Comparative study on mechanical performance of asphalt–cement mortar and emulsified asphalt–cement mortar. Road Materials and Pavement Design, 18 (5), 1239–1250.
  • Zhang, J., et al., 2017b. Characterizing the three-stage rutting behavior of asphalt pavement with semi-rigid base by using UMAT in ABAQUS. Construction and Building Materials, 140, 496–507.
  • Zhao, Y., et al., 2013. Characterization of Linear Viscoelastic Behavior of Asphalt Concrete Using Complex Modulus Model, 25 (OCTOBER), 1543–1548.
  • Zhao, Y., Alae, M., & Fu, G., 2018. Investigation of mechanisms of top-down fatigue cracking of asphalt pavement. Road Materials and Pavement Design, 19 (6), 1436–1447.
  • Zhao, Y., Jiang, L., and Zhou, L., 2015. Ambient Temperature and Vehicle Loading Effects on Asphalt Concrete Pavement Rutting Development. In: Proceeding of 5th International Conference on Transportation Engineering, 1084–1091.

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