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Article

Rutting Resistance and Fatigue Performance of Crumb Rubber-Modified Asphalt Concrete: Experimental Investigation and Mechanistic–Empirical Modeling

1
Department of Structural and Geotechnical Engineering, Faculty of Architecture, Civil Engineering and Transport Sciences, Széchenyi István University, H-9026 Győr, Hungary
2
Section of Road Engineering, Faculty of Civil Engineering & Geosciences, Delft University of Technology, Stevinweg 1, 2628 CN Delft, The Netherlands
*
Author to whom correspondence should be addressed.
Infrastructures 2026, 11(4), 133; https://doi.org/10.3390/infrastructures11040133
Submission received: 11 March 2026 / Revised: 29 March 2026 / Accepted: 2 April 2026 / Published: 8 April 2026
(This article belongs to the Special Issue Sustainable Road Design and Traffic Management)

Abstract

Crumb rubber-modified asphalt concrete (CMAC) has gained increasing attention as a sustainable pavement material capable of improving mechanical performance while utilizing waste tire resources. This study investigates the rutting resistance and fatigue behavior of CMAC using a combined experimental and mechanistic–empirical modeling approach. Asphalt mixtures containing 0–25% crumb rubber by binder weight were prepared and evaluated through Marshall stability and indirect tensile fatigue tests, whereas Fourier-transform infrared spectroscopy (FTIR) was used to examine binder–rubber interactions. The results indicate that crumb rubber significantly influences both the volumetric and mechanical properties of asphalt mixtures. Mixtures containing 10–15% crumb rubber exhibited optimal performances, achieving up to 36% higher Marshall stability and improved fatigue life compared with conventional asphalt mixtures. FTIR analysis revealed that rubber particle swelling and limited chemical interactions enhanced binder elasticity and improved binder–aggregate compatibility. However, excessive rubber content (≥20%) resulted in reduced stability owing to increased binder absorption and decreased effective binder film thickness. A mechanistic–empirical model incorporating viscoelastic, viscoplastic, and fatigue damage parameters successfully reproduced the experimental trends and identified the same optimal rubber content range. The findings demonstrate that CMAC with a moderate rubber content can enhance pavement durability and structural performance while promoting environmentally sustainable road construction through the reuse of waste tires.
Keywords: crumb rubber modified; rutting resistance; fatigue performance; asphalt concrete; mechanistic–empirical model crumb rubber modified; rutting resistance; fatigue performance; asphalt concrete; mechanistic–empirical model

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MDPI and ACS Style

Imoh, U.U.; Akinmade, D.; Movahedi Rad, M. Rutting Resistance and Fatigue Performance of Crumb Rubber-Modified Asphalt Concrete: Experimental Investigation and Mechanistic–Empirical Modeling. Infrastructures 2026, 11, 133. https://doi.org/10.3390/infrastructures11040133

AMA Style

Imoh UU, Akinmade D, Movahedi Rad M. Rutting Resistance and Fatigue Performance of Crumb Rubber-Modified Asphalt Concrete: Experimental Investigation and Mechanistic–Empirical Modeling. Infrastructures. 2026; 11(4):133. https://doi.org/10.3390/infrastructures11040133

Chicago/Turabian Style

Imoh, Udeme Udo, Daniel Akinmade, and Majid Movahedi Rad. 2026. "Rutting Resistance and Fatigue Performance of Crumb Rubber-Modified Asphalt Concrete: Experimental Investigation and Mechanistic–Empirical Modeling" Infrastructures 11, no. 4: 133. https://doi.org/10.3390/infrastructures11040133

APA Style

Imoh, U. U., Akinmade, D., & Movahedi Rad, M. (2026). Rutting Resistance and Fatigue Performance of Crumb Rubber-Modified Asphalt Concrete: Experimental Investigation and Mechanistic–Empirical Modeling. Infrastructures, 11(4), 133. https://doi.org/10.3390/infrastructures11040133

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