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Research Article

Notched specimen cracking test: a novel method to directly measure low-temperature thermal stress of asphalt binder

ORCID Icon, , , , &
Article: 2092618 | Received 26 Jan 2022, Accepted 16 Jun 2022, Published online: 11 Jul 2022

References

  • American Association of State Highway and Transportation Officials (AASHTO), 2001. MP1a Standard specification for determining low-temperature performance grade of asphalt binders.
  • American Association of State Highway and Transportation Officials (AASHTO), 2009. R49-09 determination of low – temperature performance grade (PG) of asphalt binders.
  • American Association of State Highway and Transportation Officials (AASHTO), 2016. TP 125-2016 standard method of test for determining the flexural creep stiffness of asphalt mixtures using the bending beam rheometer (BBR).
  • American Association of State Highway and Transportation Officials (AASHTO), 2018. TP113-15 standard method of test for determination of asphalt binder resistance to ductile failure using double-edge-notched tension (DENT) test.
  • American Society for Testing and Materials (ASTM), 2002. D113-07 standard test method for ductility of bituminous materials.
  • Bahia, H.U., et al., 1998. Classification of asphalt binders into simple and complex binders. Journal of the Association of Asphalt Paving Technologists, 67, 1–41.
  • Bahia, H.U., et al., 2001. Characterization of modified asphalt binders in superpave mix design.
  • Bahia, H.U., Zeng, M., and Nam, K., 2000. Consideration of strain at failure and strength in prediction of pavement thermal cracking. In: Association of Asphalt Paving Technologists Proc. https://trid.trb.org/view/675406.
  • Baumanis, J., Riekstins, A., and Balodis, A., 2021. Investigation of comparability of TSRST and SCB cracking tests for evaluation of low-temperature properties in asphalt mixtures and use in quality control. IOP Conference Series: Materials Science and Engineering, 1202 (1), 012022.
  • Bouldin, M.G., et al., 2000. Predicting thermal cracking of pavements from binder properties: theoretical basis and field validation. In: Association of Asphalt Paving Technologists Proc.
  • Cannone Falchetto, A., and Moon, K.H., 2016. Comparison of thermal stress calculation: Hopkins and Hamming’s algorithm and Laplace transformation approach. Journal of Materials in Civil Engineering, 28 (9), 04016076.
  • Ding, H., Qiu, Y., and Rahman, A, 2019. Low-temperature reversible aging properties of selected asphalt binders based on thermal analysis. Journal of Materials in Civil Engineering, 31 (3), 4018402.
  • Dongre, R., et al., 1999. Overview of the development of the new low-temperature binder specification. Report prepared for the Federal Highway Administration Binder Expert Task Group, Washington DC.
  • Edition, M.-H., and Bauld, N.R., 1986. Mechanics of materials. Boston: PWS Publishers.
  • Farrar, M.J., et al., 2013. A method to estimate the thermal stress build-up in an asphalt mixture from a single-cooling event. Road Materials and Pavement Design, 14 (Suppl. 1), 201–211.
  • Hesp, S.A.M., et al., 2009. Five year performance review of a northern Ontario pavement trial: validation of Ontario’s double-edge-notched tension (DENT) and extended bending beam rheometer (BBR) test methods. Canadian Technical Asphalt Association Proceedings Of The Annual Conference, 54 (January 2016), 99–126.
  • Hopkins, I.L., and Hamming, R.W, 1957. On creep and relaxation. Journal of Applied Physics, 28 (8), 906–909.
  • Iliuta, S., et al., 2004. Field validation study of low-temperature performance grading tests for asphalt binders. Transportation Research Record, 1875 (1), 14–21.
  • Jung, D., and Vinson, T.S, 1993. Thermal stress restrained specimen test to evaluate low-temperature cracking of asphalt-aggregate mixtures. Washington D.C.: Transportation Research Record.
  • Kim, S.-S, 2005. Direct measurement of asphalt binder thermal cracking. Journal of Materials in Civil Engineering, 17 (6), 632–639.
  • Kim, S.-S., Sargand, S., and Wargo, A., 2009. A simple test procedure for evaluating low temperature crack resistance of asphalt concrete.
  • Kim, S., 2007. Development of an Asphalt Binder Cracking Device. Final Report for Highway IDEA Project 99.
  • Kim, S.S., Wysong, Z.D., and Kovach, J, 2006. Low-temperature thermal cracking of asphalt binder by asphalt binder cracking device. Transportation Research Record, 1962, 28–35.
  • Luo, H., et al., 2020. Low-temperature cracking resistance, fatigue performance and emission reduction of a novel silica gel warm mix asphalt binder. Construction and Building Materials, 231, 117118.
  • Luo, H., et al., 2021. Analysis of relationship between component changes and performance degradation of waste-oil-rejuvenated asphalt. Construction and Building Materials, 297, 123777.
  • Man Sze Ho, S., and Zanzotto, L, 2001. Sample preparation for direct tension testing: improving determination of asphalt binder failure stress and test repeatability. Transportation Research Record, 1766 (1), 15–23.
  • Marasteanu, M., et al., 2007. Investigation of low temperature cracking in asphalt pavements national pooled fund study 776.
  • Marasteanu, M., et al., 2009. Development of a simple test to determine the low temperature creep compliance of asphalt mixtures. IDEA Program Final Report NCHRP.
  • Marasteanu, M.O., and Anderson, D.A., 1999. Improved model for bitumen rheological characterization. In: Eurobitume workshop on performance related properties for bituminous binders.
  • Moon, K.H., Marasteanu, M.O., and Turos, M, 2013a. Comparison of thermal stresses calculated from asphalt binder and asphalt mixture creep tests. Journal of Materials in Civil Engineering, 25 (8), 1059–1067.
  • Qiu, Y., et al., 2018. Damage characteristics of waste engine oil bottom rejuvenated asphalt binder in the non-linear range and its microstructure. Construction and Building Materials, 174, 202–209.
  • Roy, S.D., and Hesp, S.A.M, 2001. Low-temperature binder specification development: thermal stress restrained specimen testing of asphalt binders and mixtures. Transportation Research Record, 1766, 7–14.
  • Stehfest, H, 1970. Algorithm 368: numerical inversion of Laplace transforms [D5]. Communications of the ACM, 13 (1), 47–49.
  • Sun, Z., et al., 2019. Assessment of low-temperature cracking in asphalt materials using an acoustic emission approach. Journal of Testing and Evaluation, 45, 1948–1958.

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