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Articles

Comparison of skid resistance of EAC pavement with different maximum aggregate grain size

Pages 3930-3940 | Received 01 Sep 2020, Accepted 11 May 2021, Published online: 27 May 2021

References

  • Altreuther, B., et al., 2014. Acoustical assessment of exposed aggregate concrete roads. In 12th International Symposium on Concrete Roads, 2014, 23–26 September, Prague, Czech Republic.
  • Cackler, E.T, et al., 2006. Evaluation of U.S. and European concrete pavement noise reduction methods. Part 1, task 2, of the ISU-FHWA concrete pavement surface characteristics project. Ames, IA: Federal Highway Administration, National Concrete Pavement Technology Center.
  • Cerezo, V., et al., 2019. Evolution of the road bitumen/aggregate interface under traffic-induced polishing. Proceedings of the Institution of Mechanical Engineers. Part J: Journal of Engineering Tribology, 233 (10), 1433–1445. doi:10.1177/1350650119829370.
  • Chandler, J.W.B.E., et al., 2003. Quieter concrete roads: construction, texture, skid resistance and noise. TRL Report TRL576. 40.
  • Daskova, J., and Kudrna, J, 2012. The experience with Wehner/Schulze procedure in the Czech Republic. In: SIIV – 5th International Congress – Sustainability of Road Infrastructures, Procedia – Social and Behavioral Sciences, 53, 1035–1044. doi:10.1016/j.sbspro.2012.09.953.
  • Do, M.-T., et al., 2007. Pavement polishing – development of a dedicated laboratory test and its correlation with road results. Wear, 263, 36–42. doi:10.1016/j.wear.2006.12.086.
  • Dunford, A., et al., 2012. Three-dimensional characterisation of surface texture for road stones undergoing simulated traffic wear. Wear, 292-293, 188–196. doi:10.1016/j.wear.2012.05.010.
  • Fernando, E.G., Zimmer, R.A., and Mikhail, M, 2013. Comparative evaluation of locked-wheel and fixed-slip skid systems. Transportation Research Record: Journal of the Transportation Research Board, 2369, 125–134. doi:10.3141/2369-14.
  • Friel, S., Kane, M., and Woodward, D., 2013. Use of Wehner Schulze to predict skid resistance of Irish surfacing materials. In: 2013 Airfield & Highway Pavement Conference, Los Angeles, CA, United States, 817–828. doi:10.1061/9780784413005.
  • Friel, S., and Woodward, D, 2019. High friction surfacing systems using blends of natural aggregate and calcined bauxite. Coatings, 9 (3), 177. doi:10.3390/coatings9030177.
  • Gardziejczyk, W., and Gierasimiuk, P, 2018. Influence of texturing method on tyre/road noise of cement concrete pavement. International Journal of Pavement Engineering, 19 (12), 1061–1076. doi:10.1080/10298436.2016.1238699.
  • Gardziejczyk, W., and Wasilewska, M, 2016. Evaluation of microtexture changes of coarse aggregate during simulated polishing. Archives of Civil Engineering, 62, 19–34. doi:10.1515/ace-2015-0062.
  • Hall, J.W., et al., 2009. Texturing of concrete pavements. NCHRP report 634. Washington, D.C.: American Association of State Highway, Transportation Officials, Federal Highway Administration.
  • Hoerner, T.E., et al., 2003. Current practice of Portland cement concrete pavement texturing. Transportation Research Record: Journal of the Transportation Research Board, 1860 (1), 178–186.
  • Hofko, B., et al., 2019. A laboratory procedure for predicting skid and polishing resistance of road surfaces. International Journal of Pavement Engineering, 20 (4), 439–447. doi:10.1080/10298436.2017.1309191.
  • Hu, L., et al., 2020. Monitoring and optimizing the surface roughness of high friction exposed aggregate cement concrete in exposure process. Construction and Building Materials, 230, 117005.
  • Jozwiak-Niedzwiedzka, D., et al., 2017. Petrographic identification of reactive minerals in domestic aggregates and their classification according to RILEM and ASTM recommendations. Roads and Bridges – Drogi i Mosty, 16 (3), 223–239.
  • Jurriaans, G., et al., 2010. New design of exposed aggregate surface for northern entrance of Apeldoorn, constructional and acoustical aspects. In: 11th International Symposium on Concrete Roads, Sevilla, Spain.
  • Kane, M., et al., 2012. Laboratory evaluation of aggregate polishing as a function of load and velocity. Application to the prediction of damages on skid resistance of road surfaces due to trucks and passenger cars. Road Materials and Pavement Design, 13 (2), 312–326. doi:10.1080/14680629.2011.649424.
  • Kane, M., Artamendi, I., and Scarpas, T, 2013. Long-term skid resistance of asphalt surfacings: correlation between Wehner–Schulze friction values and the mineralogical composition of the aggregates. Wear, 303 (1–2), 235–243. doi:10.1016/j.wear.2013.03.022.
  • Kane, M., Do, M.-T., and Piau, H.M, 2010. On the study of polishing of road surface under traffic load. Journal of Transportation Engineering, 136 (1), 45–51. doi:10.1061/(ASCE)0733-947X(2010)136:1(45).
  • Kane, M., Rado, Z., and Timmons, A, 2015. Exploring the texture–friction relationship: from texture empirical decomposition to pavement friction. International Journal of Pavement Engineering, 16 (10), 919–928. doi:10.1080/10298436.2014.972956.
  • Kogbara, R.B., et al., 2016. A state-of-the-art review of parameters influencing measurement and modeling of skid resistance of asphalt pavements. Construction and Building Materials, 114, 602–617. doi:10.1016/j.conbuildmat.2016.04.002.
  • Kudrna, J., et al., 2014. Skid resistance of concrete pavements and their durability. In: 12th International Symposium on Concrete Roads, Prague, Czech Republic.
  • Nataadmadja, A.D., et al., 2015. Quantifying aggregate microtexture with respect to wear-case of New Zealand aggregates. Wear, 332-333, 907–917. doi:10.1016/j.wear.2014.11.028.
  • Pranav, S., et al., 2020. Alternative materials for wearing course of concrete pavements: a critical review. Construction and Building Materials, 236, 117609. doi:10.1016/j.conbuildmat.2019.117609.
  • Roe, P.G., et al., 1998. High and low speed skidding resistance: the influence of texture depth. TRL Report, 367.
  • ROSANNE a report D1.1. Definition of boundaries and requirements for the common scale for harmonisation of skid resistance measurements including draft standard outline.
  • ROSANNE b report D1.2. Analysis of data from the first round of tests and initial development of the common scale.
  • RVS, 2011. 08.17.02 technical contract conditions “concrete pavements – pavement construction”. Vienna: Forschungsgesellschaft Straße - Schiene - Verkehr (FSV).
  • Sandberg, U, 2007. Noise characteristics of an exposed aggregate cement concrete Surface. In: Proceedings 14th International Congress of Sound and Vibration, Cairns, Australia.
  • Schleppi, B.L., Mikhail, M.Y., and Chang, G.K., 2016. International experience and perspective of pavement texture measurement and evaluation. Transportation Research Board, Transportation Research Circular Number E-C216.
  • Senga, Y., et al., 2013. Study of the skid resistance of blends of coarse aggregates with different polish resistances. Construction and Building Materials, 48, 901–907. doi:10.1016/j.conbuildmat.2013.07.040.
  • Šernas, O., et al., 2020. The effect of exposed aggregate concrete gradation on the texture characteristics and durability. Construction and Building Materials, 261, 119921.
  • Šneideraitienė, L., and Zilioniene, D., 2020. Assessment of skid resistance of road pavements. The Baltic Journal of Road and Bridge Engineering, 15 (3), 157–168. doi:10.7250/bjrbe.2020-15.490.
  • Sommer, H., 1994. Developments of the exposed aggregate technique in Austria. In: Seventh International Symposium on Concrete Roads, Vienna, Austria, 133–136.
  • Sommer, H., 1998. Longtime experience with exposed aggregate surfaces in Austria. Theme 3 – pavement performance and evaluation. In: 8th International Symposium on Concrete Roads. Lisbon, Portugal, 117–121.
  • Stinglhammer, H., and Krenn, H., 1994. Noise reducing exposed aggregate surfaces – experience andrecommendations. In: Seventh International Symposium on Concrete Roads. Vienna, Austria, 137–140.
  • Teuns, K.C.J.G., et al., 2003. Full scale pavement tests of exposed concrete aggregates: acoustical aspects and friction characteristics. In: 9th International Symposium on Concrete Roads, Istanbul, Turkey.
  • Tompkins, D., Khazanovich, L., and Darter, M.I, 2010. 2008 Survey of European composite pavements. Washington, D.C.: Transportation Research Board.
  • Torbruegge, S., and Wies, B, 2015. Characterization of pavement texture by means of height difference correlation and relation to wet skid resistance. Journal of Traffic and Transportation Engineering (English Edition), 2 (2), 59–67. doi:10.1016/j.jtte.2015.02.001.
  • Unitt, R.P., and Meere, P.A, 2018. Mineralogical and microstructural controls on the surface texture of high polished stone value aggregates. Wear, 408–409, 13–21. doi:10.1016/j.wear.2018.04.011.
  • Vaitkus, A., et al., 2019a. Concrete modular pavements – types, issues and challenges. The Baltic Journal of Road and Bridge Engineering, 14 (1), 80–103. doi:10.7250/bjrbe.2019-14.434.
  • Vaitkus, A., et al., 2019b. Definition of concrete and composite precast concrete pavements texture. Transport, 34 (3), 404–414. doi:10.3846/transport.2019.10411.
  • Vieira, T., Sandberg, U., and Erlingsson, S, 2019. Negative texture, positive for the environment: effects of horizontal grinding of asphalt pavements. Road Materials and Pavement Design, 22, 1–22.
  • Wang, D., et al., 2013. Influence of different polishing conditions on the skid resistance development of asphalt surface. Wear, 308 (1-2), 71–78. doi:10.1016/j.wear.2013.09.013.
  • Wang, H., et al., 2020a. Correlate aggregate angularity characteristics to the skid resistance of asphalt pavement based on image analysis technology. Construction and Building Materials, 242, 118150.
  • Wang, C., et al., 2020b. Investigation on the morphological and mineralogical properties of coarse aggregates under VSI crushing operation. International Journal of Pavement Engineering, 1–14.
  • Wasilewska, M, 2017. Evaluation of skid resistance of wearing course made of stone mastic asphalt mixture in laboratory conditions. IOP Conference Series: Materials Science and Engineering, 245, 022043.
  • Wasilewska, M., Gardziejczyk, W., and Gierasimiuk, P, 2017. Evaluation of skid resistance of exposed aggregate concrete pavement in the initial exploatation period = Ocena właściwości przecipoślizgowych nawierzchni betonowych z odkrytym kruszywem w początkowym okresie ich użytkowania. Roads and Bridges – Drogi i Mosty, 16 (4), 301–314.
  • Wasilewska, M., Gardziejczyk, W., and Gierasimiuk, P, 2018. Effect of aggregate graining compositions on skid resistance of exposed aggregate concrete pavement. IOP Conference Series: Materials Science and Engineering, 356. doi:10.1088/1757-899X/356/1/012001.
  • Woodward, D., and Friel, S, 2017. Predicting the wear of high friction surfacing aggregate. Coatings, 7 (5), 71. doi:10.3390/coatings7050071.
  • Zhang, J.P., Liu, G.Q., and Wang, P.Z, 2014. Skid-resistance and noise-reducing characteristics of exposed-aggregate cement concrete pavement. Advanced Materials Research, 1052, 352–357. doi:10.4028/www.scientific.net/AMR.1052.352.

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