Multiscale Rheological Properties of Pavement Asphalt: A State-of-the-Art Review
Highlights
- A full review of the chemicals in asphalt, ideas about its structure, and how it flows when subjected to different forces.
- A revelation of the rheology of colloidal structures and supramolecular models.
- A thorough and detailed evaluation of large-amplitude oscillatory shear testing.
Abstract
1. Introduction
2. Chemical Composition
2.1. Element Composition and Functional Groups
2.2. SARA Fractions (Saturates, Aromatics, Resins and Asphaltenes)
2.2.1. Basic Properties of SARA Fractions
2.2.2. Correlation Between SARA Fractions and Rheological Properties
2.2.3. Waxes
2.3. Molecular Simulation Models
2.3.1. All-Atom Simulation
2.3.2. Coarse-Grained Simulation
3. Microstructure
3.1. Intermolecular Interactions
3.2. Supramolecular Structures
3.3. Early Stage Colloidal Structure
3.4. Modern Colloidal Structures
3.4.1. Asphaltene Micelles
3.4.2. Correlation Between Colloidal Structures and Rheological Properties
3.5. Bee Structure
3.5.1. Morphology of Asphalt Under Atomic Force Microscopy
3.5.2. Correlation Between Bee Structure and Rheological Properties
3.6. Summary
4. Rheological Properties of Asphalt Under Dynamic Shear Loading
4.1. Linear Viscoelasticity
4.1.1. Time–Temperature Superposition Principle
4.1.2. Empirical Algebraic Models
4.1.3. Mechanical Element Models
4.1.4. Correlation Between Microstructures and Rheological Properties
| Reference | Factors | Methods | Findings |
|---|---|---|---|
| (a) | |||
| Wang et al. [130] | Colloid index (Ic) | Characterizing various types of asphalt and their fractions using DSR to establish the relationship between colloid index and rheological parameters. | The complex modulus of asphalt is significantly correlated with the colloid index, increasing with the increase in colloid index. |
| Siroma et al. [131] | Molecular weight | Based on the phase angle master curve of asphalt, the molecular weight distribution of asphalt was calculated by δ-method. | The molecular weight distribution (MWD) calculated by δ-method has the same trend as the GPC test results. The molecular aggregation index (MAI) was proposed to quantify the aggregation rate of asphaltene. |
| Krolkral et al. [132] | Molecular weight | Based on the phase angle master curve of asphalt, the MWD of asphalt is calculated by δ-method. The molecular weight distribution is decomposed into four Gaussian functions, and the asphalt structure is inversely calculated by viscoelastic master curve. | During the aging process of asphalt, the proportion of low molecular weight components gradually decreased, while that of high molecular weight components increased. |
| Paliukaite et al. [133] | Chemical composition | The strength of functional groups in asphalt was determined semi-quantitatively using Fourier transform infrared spectroscopy, and the metal content in asphalt was indirectly assessed using an organic element analyzer. The impact of chemical composition on asphalt was evaluated by comparing the changes in these parameters and the master curve before and after aging. | Carbon, oxygen, and sulfur are the primary elements that significantly impact asphalt performance. The presence of heavy metals in asphalt results in reduced asphaltenes content and heightened sensitivity of sulfur to oxygen within the structure. |
| Weigel et al. [134] | Chemical composition | Through a variety of statistical methods to explore whether there is a relationship between the chemical composition of asphalt and its rheological parameters. | There is a significant relationship between asphaltenes content and phase angle and complex modulus, but the accuracy of the established prediction model decreases above 50 °C. |
| (b) | |||
| Yu et al. [135] | Chemical composition, Bee structure | Derived asphalt was prepared by blending four groups of components of two kinds of original asphalt. Based on the AFM and DSC test results of original asphalt, SARA fractions and derived asphalt, as well as their viscoelastic properties, the relationship between chemical composition, microstructure and rheological properties was established. | Increasing the asphaltenes content in the derived asphalt can approximately simulate asphalt aging. With the increase in asphaltenes content, the micelles in the asphalt gradually increase, and the transition from sol structure to gel structure is gradually realized. The higher the asphaltenes content, the higher the glass transition temperature of asphalt, and the smaller the phase angle. |
| Oldham et al. [136] | Bee structure | By comparing the morphology and rheological parameter changes in asphalt before and after aging, as well as after the addition of rejuvenators using AFM and DSR, a connection between asphalt’s morphology and rheological properties was established. | The length of bee structure is significantly related to the hardness and viscosity of asphalt, and the addition of rejuvenator will significantly affect the length of bee structure. |
| Soenen et al. [137] | Interactions between polycyclic aromatic structures | The size of aromatic structure was semi-quantitatively analyzed by spectral techniques, and the relationship between the interaction force between aromatic structures and the rheological properties of asphalt was established by combining the master curve. | Under higher temperature or longer loading times, the viscoelasticity of asphalt is primarily influenced by its larger conjugated aromatic structure. Conversely, at lower temperatures or shorter loading times, the viscoelasticity of asphalt is notably associated with its smaller aromatic structure. |
| Li et al. [138] | Asphaltene particle size | Establish a continuous relaxation spectrum using the storage modulus and loss modulus from the master curve. Then, calculate the equivalent asphalt particle size based on the longest relaxation time in the relaxation spectrum. | The equivalent asphaltene particle size aeq was proposed. The longest relaxation time and equivalent asphaltene particle size of asphalt increase with the increase in aging degree. |
4.2. Nonlinear Viscoelasticity
4.2.1. Nonlinear Viscoelastic Characterization Methods
4.2.2. Nonlinear Viscoelastic Evaluation Methods in the LAOS Test
4.3. Thixotropy
5. Conclusions and Future Perspective
5.1. Conclusions
5.2. Future Perspective
6. Patents
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Appendix A
Appendix A.1
| Models | Equations | Parameters |
|---|---|---|
| Jongepier and Kuilman’s model [179] | : relaxation spectrum : width of relaxation spectrum : relaxation time : mean relaxation time | |
| Dobson’s model [117] | b: shear-susceptibility index | |
| Dickinson and Witt’s model [180] | ||
| Christensen and Anderson (CA) model [181] | Gg: Glass transition modulus (Pa), ω: Angular frequency (rad/s) | |
| Fractional model [182] | ) ) : fourier transform of the Dirac delta function | |
| Christensen, Anderson and Marasteanu (CAM) model [183] | ||
| Modified Christensen, Anderson and Marasteanu model [102] | ||
| Al-Qadi and co-workers’ model [184] | : the scale parameter v, m: dimensionless parameters | |
| Polynomial model [185] | : reduced frequency (Hz), |G*|: complex modulus (Pa) | |
| Sigmoidal model [185] | : lower asymptote : the difference between the values of the upper and lower asymptote |
Appendix A.2
| Models | Equations | Parameters |
|---|---|---|
| Huet model [186] | , (0 < h < k < 1) | : limit of the complex modulus : mean relaxation time o: dimensionless constant |
| Huet-Sayegh (HS) model [187] | : elastic modulus | |
| Di Benedetto and Neifar (DBN) model [188] | : elastic modulus of the single spring : a viscosity function of the temperature | |
| 2S2P1D model [189] | : dimensionless constan |
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| Saturates | Aromatics | Resins | Asphaltenes | |
|---|---|---|---|---|
| State (room temperature) | white translucent liquid | yellow or red liquid | black semisolid | black powder |
| Density/(g·cm−3) | 0.90 | 1.00 | 1.07 | 1.15 |
| Weight percent/% | 3.0~19.1 | 22.4~46.6 | 30.0~50.0 | 4.0~22.9 |
| Molar weight/(g·mol−1) | 600~780 | 500~800 | 830~1100 | 800~3500 |
| Solubility parameter/(MPa−0.5) | 15.0~17.0 | 17.0~18.5 | 18.5~20.0 | 17.6~21.7 |
| Carbon-hydrogen ratio | 2.00 | 1.5 | 1.38~1.69 | 1.15 |
| Carbon percentage/% | 78.0~84.0 | 80.0~87.0 | 67.0~88.0 | 80.0~88.6 |
| Hydrogen percentage/% | 8.0~12.0 | 9.0~13.0 | 9.0~12.0 | 7.1~10.0 |
| Nitrogen percentage/% | <0.1 | 0~0.4 | 0.2~1.7 | 0.3~0.4 |
| Oxygen percentage/% | <0.1 | 0.2 | 0.3~2.0 | 0.3~5.0 |
| Sulfur percentage/% | <0.1 | 0~4.0 | 0.4~5.0 | 3.0~10 |
| Interactions | Existence |
|---|---|
| dipole–dipole interaction | Between molecules with uneven electron distribution |
| dispersion force | Between all molecules |
| hydrogen bond | O, S, N and other atoms with large electronegativity often appear in asphaltenes, so N-H…O, O-H…N, S-H…O, O-H…S and other forms of hydrogen bonds often appear in asphaltenes [50]. |
| π-π interaction | π-π stacking often occurs between aromatic compounds in asphalt, which is a non-covalent bond interaction as important as hydrogen bonds. The number of benzene rings, arrangement and side chain length of aromatic compounds in asphalt have a certain influence on π-π interaction [50]. |
| metal coordination | S, N, O heteroatoms with lone pair electrons in asphaltene molecules, which provides the possibility of coordination between asphaltene molecules and porphyrin nickel and porphyrin vanadium containing empty valence orbitals [50]. |
| Morphology | Asphalts | Sample Preparation Methods |
|---|---|---|
| Bee structure [81,83] | A gel-type binder (unknown crude source) | Heat-cast |
| Dendrite structure [84] | Sasobit modified asphalt | Solution-cast |
| Flower-like domain [85] | Binder B1 from a high-sulphur Middle East crude source | Solution-cast |
| Flake-like domain [61] | SHRP binder AAM | Heat-cast |
| Methods | Equations | Parameter |
|---|---|---|
| WLF equation [108] | , (glass transition temperature) | : shift factor T: temperature (°C) : reference temperature (°C) : constant |
| Arrhenius equation [109] | , | : Apparent activation energy R: Universal gas constant, (8.315 K·mol−1) T: temperature (K) : reference temperature (K) |
| Log-linear [110] | : slope | |
| VTS [111] | : viscosity (cPoise) A: regression intercept VTS: VTS equation regression slope : temperature (°R) | |
| Quadratic polynomial [4] | : educed frequency (Hz) T: temperature (°C) : reduced frequency (°C) : frequency (Hz) |
| Methods | Equations or Definitions | Parameters | Uses and Legends |
|---|---|---|---|
| Relative intensity of the higher order harmonic [103] | Strain-controlled mode: n = 1,3,5… Stress-controlled mode: n = 1,3,5… | In/1: n-order harmonic relative intensity ratio τn: n-order harmonic stress γn: n-order harmonic strain δn: n-order harmonic phase angle | Evaluate the degree of NLVE of asphalt. Legend [103]: |
| Lissajous curve [150,151,152] | The Lissajous curve is mainly divided into two types: ① Elastic Lissajous curve (stress–strain curve) ② Viscous Lissajous curve (stress–strain rate curve) | ① Elastic Lissajous curve: ·Strain-controlled mode: G′M: minimum strain modulus, the tangent slope at γ = 0 G′L: maximum strain modulus, the slope from γ = γ0 to the origin | The viscoelastic state and degree of asphalt are judged according to the curve shape. Legend (Elastic Lissajous curve) [150]: |
| ·Stress-controlled mode: J′M: minimum nonlinear compliance J′L: maximum nonlinear compliance | |||
| ② Viscous Lissajous curve ·Strain-controlled mode: η′M: minimum strain rate viscosity, the tangent slope at = 0 η′L: maximum strain rate viscosity, the slope from = 0 to the origin | |||
| ·Stress-controlled mode: Φ′M: minimum fluidity Φ′L: maximum fluidity | |||
| Stress decomposition and strain decomposition [153,154] | ① Nonlinear stress: ② Nonlinear strain: ③ Chebyshev polynomials: ·Elastic: ·Viscous: | τOE(x): apparent elastic stress, x = γ/γ0 = sinωt τEO(y): apparent viscous stress, x = /0 = cosωt : apparent elastic strain : apparent viscous strain en = Gn′(−1)(n−1)/2: n-order Chebyshev coefficient vn = Gn″/ω: n-order Chebyshev coefficient cn = Jn′: n-order Chebyshev coefficient fn = nωJn″: n-order Chebyshev coefficient Tn(x): n-order Chebyshev coefficient | The rheological behavior of the material was judged according to the Chebyshev coefficient (commonly used third-order Chebyshev coefficient). Legend [145]: |
| Constitutive model | Jeffreys model [155]: | ξ: constant η∞: infinite shear viscosity G0: shear modulus | The NLVE behavior under LAOS loading is described. |
| Bergström-Boyce model [156]: | : cut-off stress below which no flow will occur ξ: strain adjustment factor : viscoelastic chain stretch |
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Zhan, Q.; Cheng, Z.; Cao, X.; Liu, Q.; Yuan, Y.; He, L.; Gao, J. Multiscale Rheological Properties of Pavement Asphalt: A State-of-the-Art Review. Coatings 2026, 16, 355. https://doi.org/10.3390/coatings16030355
Zhan Q, Cheng Z, Cao X, Liu Q, Yuan Y, He L, Gao J. Multiscale Rheological Properties of Pavement Asphalt: A State-of-the-Art Review. Coatings. 2026; 16(3):355. https://doi.org/10.3390/coatings16030355
Chicago/Turabian StyleZhan, Qiqi, Zuoyang Cheng, Xuejuan Cao, Qing Liu, Ying Yuan, Lihong He, and Junfeng Gao. 2026. "Multiscale Rheological Properties of Pavement Asphalt: A State-of-the-Art Review" Coatings 16, no. 3: 355. https://doi.org/10.3390/coatings16030355
APA StyleZhan, Q., Cheng, Z., Cao, X., Liu, Q., Yuan, Y., He, L., & Gao, J. (2026). Multiscale Rheological Properties of Pavement Asphalt: A State-of-the-Art Review. Coatings, 16(3), 355. https://doi.org/10.3390/coatings16030355

