Influence of the Aggregate Shape and Resistance to Fragmentation on Unbound Base Layer Resilient Modulus

Authors

  • Vilius Filotenkovas Vilnius Gediminas Technical University, Saulėtekio al. 11, LT-10223 Vilnius, Lithuania
  • Audrius Vaitkus Road Research Institute of Faculty of Environmental Engineering, Vilnius Gediminas Technical University, Linkmenų str. 28, LT-08217 Vilnius, Lithuania https://orcid.org/0000-0001-5103-9747

DOI:

https://doi.org/10.7250/bjrbe.2022-17.571

Keywords:

unbound base layer, resilient modulus, aggregate shape, particle resistance to fragmentation, aggregates, triaxial load test

Abstract

The performance of unbound base materials, exclusively of the upper base layers, besides compaction level and layer thickness, depends on unbound material type, aggregates shape, fine content and mechanical properties of aggregates. The response of the pavement structure to loading is expressed through stress and strain magnitudes, accumulation of which leads to layer permanent deformations. One of the key factors for designing unbound base layers is resilient modulus, which can be found from triaxial tests. The aim of the research is to analyse the effect of the aggregate particle shape, structure and the resistance to crushing properties on resilient modulus of the upper layers of the unbound base layers. The following properties have been determined during the tests: aggregate particle size distribution, particle shape and flakiness, percentage of crushed and broken particle surfaces, density, water absorption, resilient modulus under low stress level loading. According to the performed research with tested aggregate mixtures, it is assumed that most influence on resilient modulus is exerted by aggregate whole granular size distribution, water absorption and the largest aggregate particle surface angularity. Resilient modulus in the tested dolomite fraction mixtures differing from 32 mm to 56 mm showed any reasonable difference with mean nominal pressures being higher than 300 kPa.

References

Ba, M., Tinjum, J., & Fall, M. (2015). Prediction of permanent deformation model parameters of unbound base course aggregates under repeated loading. Road Materials and Pavement Design, 16(4), 854–869. https://doi.org/10.1080/14680629.2015.1063534

Erlingsson, S. (2007). On Forecasting the Resilient Modulus from the CBR Value of Granular Bases. Road Materials and Pavement Design, 8(4), 783–797. https://doi.org/10.1080/14680629.2007.9690099

Erlingsson, S., & Magnusdottir, B. (2002). Dynamic Triaxial Testing of Unbound Granular Base Course Materials. In Bearing Capacity of Roads, Railways and Airfields. CRC Press. https://doi.org/10.1201/9781003078821-21

Filotenkovas, V., & Vaitkus, A. (2019). Effect of compaction and hydraulic gradient on subbase layer permeability. Coatings, 9(10), 0641. https://doi.org/10.3390/coatings9100641

Fladvad, M., & Erlingsson, S. (2022). Modelling the response of large-size subbase materials tested under varying moisture conditions in a heavy vehicle simulator. Road Materials and Pavement Design, 23(5), 1107–1128. https://doi.org/10.1080/14680629.2021.1883462

Haynes, J. H., & Yoder, E. J. (1963). Effects of Repeated Loading on Gravel and Crushed Stone Base Course Materials Used in the AASHO Road Test. Publication FHWA/IN/JHRP-63/04. Joint Highway Research Project, Indiana Department of Transportation and Purdue University, West Lafayette, Indiana, 1963. https://doi.org/10.5703/1288284313622

Hicks, R. G., & Monismith, C. L. (1971). Factors Influencing the Resilient Properties of Granular Materials. Highway Research Record, 345, 15–31.

Luo, X., Gu, F., Zhang, Y., Lytton, R. L., & Zollinger, D. (2017). Mechanistic-Empirical Models for Better Consideration of Subgrade and Unbound Layers Influence on Pavement Performance. Transportation Geotechnics, 13, 52–68. https://doi.org/10.1016/j.trgeo.2017.06.002

Mishra, D., Tutumluer, E., & Xiao, Y. (2010). Particle Shape, Type, and Amount of Fines and Moisture Affecting Resilient Modulus Behavior of Unbound Aggregates. GeoShanghai International Conference 2010, Paving Materials and Pavement Analysis, 279–287. https://doi.org/10.1061/41104(377)34

Mishra, D., & Tutumluer, E. (2012). Aggregate Physical Properties Affecting Modulus and Deformation Characteristics of Unsurfaced Pavements. Journal of Materials in Civil Engineering, 24(9), 1144–1152. https://doi.org/10.1061/(ASCE)MT.1943-5533.0000498

National Academies of Sciences, Engineering, and Medicine (2008). Performance-Related Tests of Recycled Aggregates for Use in Unbound Pavement Layers. The National Academies Press. https://doi.org/10.17226/23108

Pan, T., Tutumuer, E., & Anochie-Boateng, J. (2006). Aggregate Morphology Affecting Resilient Behavior of Unbound Granular Materials. Transportation Research Record: Journal of the Transportation Research Board, 1952(1), 12–20. https://doi.org/10.1177/0361198106195200102

Rahman, M. S., & Erlingsson, S. (2015). A model for predicting permanent deformation of unbound granular materials. Road Materials and Pavement Design, 16(3), 653–673. https://doi.org/10.1080/14680629.2015.1026382

Salour, F., & Erlingsson, S. (2015). Resilient modulus modelling of unsaturated subgrade soils: laboratory investigation of silty sand subgrade. Road Materials and Pavement Design, 16(3), 553–568. https://doi.org/10.1080/14680629.2015.1021107

Taherkhani, H. (2015). An Investigation on the Effects of Aggregates Properties on the Performance of Unbound Aggregate Base Layer. International Journal of Transportation Engineering, 3, 151–164.

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Published

28.09.2022

How to Cite

Filotenkovas, V., & Vaitkus, A. (2022). Influence of the Aggregate Shape and Resistance to Fragmentation on Unbound Base Layer Resilient Modulus. The Baltic Journal of Road and Bridge Engineering, 17(3), 104-119. https://doi.org/10.7250/bjrbe.2022-17.571