Damage and Thixotropy in Asphalt Mixture and Binder Fatigue Tests

Fatigue cracking is considered one of the main damage mechanisms in asphalt pavement design. Design methods use fatigue laws obtained by laboratory testing of the materials involved. Typically, these tests consist of subjecting the asphalt mixture to cyclic loading until failure occurs. However, failure is associated not with specimen fracture (which is unusual), but with a slight decrease in the mechanical properties of the material, usually in the complex modulus. As a consequence, it is important to differentiate between real damage to the material and changes in its viscoelastic behavior and thixotropy. It is also crucial to account for the healing that occurs in asphalt material after rest periods. The above considerations are important in the fatigue testing of asphalt binders because these materials show pronounced viscoelastic behavior and thixotropy, especially when subjected to cyclic loading. This paper demonstrates that in many cases what is taken for fatigue failure during testing (i.e., a decrease in the complex modulus below half of its initial value) is actually thixotropy. Thus, the complex modulus can be recovered by reducing the loading or, as in this study, the strain applied. In contrast, asphalt mixtures experience irreversible damage, and depending on the asphalt binder, the thixotropic effects are more or less pronounced. This paper analyzes the failure criteria currently used in the fatigue testing of asphalt mixtures and binders and evaluates the parameters chosen, namely, complex modulus (G*) and phase angle (δ) to characterize asphalt binders (G*sin δ). A cyclic uniaxial tension–compression test under strain-controlled conditions was performed. Three test modalities were used: time sweeps (constant strain amplitude until total failure), increasing strain sweeps (increase in strain amplitude every 5,000 cycles), and up-and-down strain sweeps (alternating increases and decreases in strain amplitude).

[1]  R. N. Traxler,et al.  Rheological Properties of Asphalts IV Observations Concerning the Anomalous Flow Characteristics of Air‐Blown Asphalts , 1937 .

[2]  R. Christensen,et al.  Theory of Viscoelasticity , 1971 .

[3]  Dallas N. Little,et al.  EVALUATION OF HEALING IN ASPHALT CONCRETE BY MEANS OF THE THEORY OF NONLINEAR VISCOELASTICITY , 1989 .

[4]  Hussain U Bahia,et al.  NON-LINEAR VISCOELASTIC AND FATIGUE PROPERTIES OF ASPHALT BINDERS , 1999 .

[5]  P Turner,et al.  Development of binder specification parameters based on characterization of damage behavior , 2001 .

[6]  Hussain U Bahia,et al.  Measuring and Defining Fatigue Behavior of Asphalt Binders , 2002 .

[7]  Bor-Wen Tsai,et al.  Influence of Asphalt Binder Properties on the Fatigue Performance of Asphalt Concrete Pavements (With Discussion) , 2005 .

[8]  Ning Li,et al.  Investigation of rheological and fatigue properties of asphalt mixtures containing polyester fibers , 2008 .

[9]  Ramón Botella Nieto,et al.  False failure in flexural fatigue tests , 2009 .

[10]  H. Benedetto,et al.  New fatigue test on bituminous binders and mastics using an annular shear rheometer prototype and waves propagation , 2009 .

[11]  D. Bodin,et al.  Fatigue behaviour of bitumen in tension-compression loading mode : Rheological analysis and comparison with mix fatigue , 2009 .

[12]  Hai Huang,et al.  Fatigue and Healing in Asphalt Binders , 2009 .

[13]  Y. Richard Kim,et al.  Application of Thixotropy to Analyze Fatigue and Healing Characteristics of Asphalt Binder , 2010 .

[14]  Carl M. Johnson ESTIMATING ASPHALT BINDER FATIGUE RESISTANCE USING AN ACCELERATED TEST METHOD , 2010 .

[15]  R. Miró,et al.  Effect of Thermal Stresses on Fatigue Behavior in Bituminous Mixes , 2011 .