Fatigue Cracking Resistance of Crumb Rubber-Modified Asphalt: Mechanisms, Testing Methods, and Multiscale Performance Evaluation from Binder to Field

Fatigue cracking is a load-related distress limiting flexible pavement service life. This review evaluates 121 studies on the fatigue resistance of crumb rubber-modified asphalt (CRMA) across binder, mixture, modeling, and field scales. CRMA improves fatigue resistance through rubber–asphalt interaction and the elastic contribution of undissolved particles; adequate swelling, dispersion, and bonding slow crack propagation, whereas weak interaction or aging-related interface weakening promotes localized damage. Optimum rubber contents and particle sizes vary with damage stage, material scale, dosage basis, and processing. The benefit is strain-dependent, greater at 2.5% than 5.0%, and rankings may reverse between amplitudes. Linear viscoelastic parameters poorly characterize progressive damage in highly modified binders; linear amplitude sweep testing with viscoelastic continuum damage analysis is more informative but sensitive to the failure criterion. The benefit narrows with evaluation scale, though not uniformly: binder-level improvements reach 116 times the control at 2.5% strain and 45 times at 5.0%, mixture-scale improvements about 1.4 to 10 times (upper bound provisional), and field performance comparable to or moderately better than modified controls. CRMA is a viable alternative to polymer-modified asphalt under specific conditions; equivalence rather than superiority is defensible. Standardized failure criteria, phase-resolved aging procedures, protocols representing healing, and validated multi-scale relationships are needed.

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Publication Details

Journal
Polymers
Published
2026-10-08
DOI
https://doi.org/10.3390/polym18192451
Primary Topic
Asphalt Pavement Performance Evaluation
Type
article
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article

Fatigue Cracking Resistance of Crumb Rubber-Modified Asphalt: Mechanisms, Testing Methods, and Multiscale Performance Evaluation from Binder to Field

Hyun Hwan Kim, Moon-Sup Lee, Sushmit Sharma Bhattarai, Soon-Jae Lee et al.
Polymers
Asphalt Pavement Performance Evaluation
article

Fatigue Cracking Resistance of Crumb Rubber-Modified Asphalt: Mechanisms, Testing Methods, and Multiscale Performance Evaluation from Binder to Field

Hyun Hwan Kim, Moon-Sup Lee, Sushmit Sharma Bhattarai, Soon-Jae Lee, Anil Rai
article en

Abstract

Fatigue cracking is a load-related distress limiting flexible pavement service life. This review evaluates 121 studies on the fatigue resistance of crumb rubber-modified asphalt (CRMA) across binder, mixture, modeling, and field scales. CRMA improves fatigue resistance through rubber–asphalt interaction and the elastic contribution of undissolved particles; adequate swelling, dispersion, and bonding slow crack propagation, whereas weak interaction or aging-related interface weakening promotes localized damage. Optimum rubber contents and particle sizes vary with damage stage, material scale, dosage basis, and processing. The benefit is strain-dependent, greater at 2.5% than 5.0%, and rankings may reverse between amplitudes. Linear viscoelastic parameters poorly characterize progressive damage in highly modified binders; linear amplitude sweep testing with viscoelastic continuum damage analysis is more informative but sensitive to the failure criterion. The benefit narrows with evaluation scale, though not uniformly: binder-level improvements reach 116 times the control at 2.5% strain and 45 times at 5.0%, mixture-scale improvements about 1.4 to 10 times (upper bound provisional), and field performance comparable to or moderately better than modified controls. CRMA is a viable alternative to polymer-modified asphalt under specific conditions; equivalence rather than superiority is defensible. Standardized failure criteria, phase-resolved aging procedures, protocols representing healing, and validated multi-scale relationships are needed.

PolymersVol. 18(19)
Texas State University (US), Florida Gulf Coast University (US), Korea Institute of Civil Engineering and Building Technology (KR)
Openalex Percentile: Top 17%
Asphalt Pavement Performance Evaluation
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