Submitted:
30 May 2025
Posted:
30 May 2025
You are already at the latest version
Abstract
Keywords:
1. Introduction
2. Types and Characteristics of Mining Waste
2.1. Overburden and Waste Rock
2.2. Fly Ash
2.3. Silica Fume
2.4. Sulphur
2.5. Tailings
2.6. Red Mud
2.7. Slag
3. Engineering Applications of Mining Waste in Road Construction
3.1. Subgrade Stabilisation
3.2. Base and Subbase Layers
3.3. Asphalt Mixtures
3.4. Concrete Pavements (Rigid Pavements)
4. Performance Evaluation of Mining Waste in Road Pavements
4.1. Bitumen Binder Modified with Mining Waste
4.1.1. Penetration
4.1.2. Softening Point (Ring and Ball)
4.1.3. Viscosity
4.1.4. Rheological Properties (from DSR Test)
4.1.5. Aging Properties (Short-term and Long-term)
4.2. Asphalt Mixture Modified with Mining Waste
4.2.1. Rutting Resistance
4.2.2. Fatigue Resistance
4.2.3. Strength and Durability Properties
4.2.4. Moisture Susceptibility Properties
5. Discussion
6. Conclusions
- Standardisation of mix design remains a challenge due to the variability in testing protocols and material properties.
- Field validation under varying climatic and traffic conditions is needed to complement laboratory findings.
- Long-term durability assessments, particularly regarding aging and freeze-thaw resilience, are still limited.
- Material compatibility, especially involving red mud or geopolymer binders with conventional asphalt and aggregates, warrants further study.
- Environmental assessments, such as full life-cycle analysis (LCA) and leachability studies, are essential to confirm the environmental safety and carbon benefits of these applications.
- Economic feasibility and policy support must be developed through cost-benefit analysis and incorporation into pavement design standards.
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Property | Lithium Slag | Steel Slag | Copper Slag |
|---|---|---|---|
| Origin | Lithium mica extraction | Steel manufacturing | Copper smelting |
| Colour | Brownish-yellow | Grey to dark grey | Black, blackish grey |
| Density (g/cm³) | 2.551 | ~3.4 | 3.50 |
| Specific Surface Area | 60 m²/kg | Lower than lithium slag | — |
| Particle Size | 100% < 2.36 mm; 23.3% < 0.075 mm | Coarse, angular | Majority ~150 μm; 91% > 150 μm |
| Key Components | SiO₂, Al₂O₃, K₂O, CaO, Fe₂O₃, Li₂O, etc. | CaO, SiO₂, Fe₂O₃, MgO | Fe₂O₃, SiO₂, Al₂O₃, TiO₂, etc. |
| Microstructure | Quartz, hydrated calcium sulfate, fluorite phases | Dense, angular crystalline phases | Irregular, glassy particle texture |
| Property | Test Method | Standard Code |
|---|---|---|
| Penetration | Needle Penetration | ASTM D5 / EN 1426 |
| Softening Point | Ring and Ball | ASTM D36 / EN 1427 |
| Ductility | Elongation | ASTM D113 |
| Viscosity | Rotational Viscosity | ASTM D4402 |
| Short-Term Aging | Rolling Thin-Film Oven Test (RTFOT) | ASTM D2872 |
| Long-Term Aging | Pressure Aging Vessel (PAV) | ASTM D6521 |
| Rheological Properties | Dynamic Shear Rheometer (DSR) | AASHTO T315 |
| Multiple Stress Recovery | Multiple Stress Creep Recovery (MSCR) | AASHTO T350 |
| Low-Temperature Stiffness | Bending Beam Rheometer (BBR) | AASHTO T313 |
| Material | G*/sin δ (Unaged) | Interpretation | Source |
|---|---|---|---|
| Red Mud | 1.29–1.62 kPa | Exceeds Superpave requirement (≥1.0 kPa); good rutting resistance | Wang et al., 2024 [19] |
| Silica Fume | ↑ G* and ↓ δ | Improved stiffness and elasticity | Wang et al., 2024 [19] |
| Fly Ash | ↑ G*/sin δ with cement | Strong pozzolanic effect; enhanced high-temperature resistance | Adham et al., 2024 [56] |
| Sulphur + PE | ↑ G*, ↓ δ | More elastic and rut-resistant binder | Adham et al., 2024 [56] |
| Geopolymer (FA+MK-SF) | 1.4–3.4 kPa (avg.) | Excellent rutting & fatigue resistance (12% FA & 4% MK-SF blends) | Saleh et al., 2025 [57] |
| Material | Aging Type | Performance Outcome | Interpretation | Source |
|---|---|---|---|---|
| Red Mud | RTFOT (Short) | Minimal penetration loss; stiffness retained | Indicates resistance to short-term oxidative aging | Wang et al., 2024 [19] |
| Red Mud | PAV (Long) | PG–22 rating achieved | Suitable for cold climates with low cracking risk | Wang et al., 2024 [19] |
| Sulphur + PE | RTFOT (Short) | Reduced Penetration Aging Ratio; increased softening pt. | Stronger thermal stability; lower oxidation rate | Adham et al., 2024 [56] |
| Sulphur + PE | PAV (Long) | High post-aging ductility and elasticity | Excellent long-term durability and flexibility | Adham et al., 2024 [56] |
| Silica Fume | PAV (Long) | Maintained stiffness and deformation control | Aging resistance supports warm mix performance | Wang et al., 2024 [19] |
| Geopolymer (FA+MK-SF) | RTFOT (Short) | Retained stiffness; low softening point loss | Effective against short-term aging degradation | Saleh et al., 2025 [57] |
| Geopolymer (FA+MK-SF) | PAV (Long) | Met PG-76 rating post-aging | Demonstrates excellent long-term resistance | Saleh et al., 2025 [57] |
| Property | Test Method | Standard Code |
|---|---|---|
| Stability & Flow | Marshall Test | ASTM D6927 |
| Indirect Tensile Strength | Indirect Tensile Strength (IDT) | ASTM D6931 |
| Rutting & Moisture Susceptibility | Hamburg Wheel Tracking Test (HWTT) | AASHTO T342 |
| Stiffness & Fatigue | Dynamic Modulus Test (DM) | AASHTO T378 |
| Material | Rutting Resistance | Fatigue Resistance | Strength/Durability | Moisture Susceptibility | Key References |
|---|---|---|---|---|---|
| Steel Slag | High (↑ stiffness, interlock) | Moderate–High | ↑ Marshall stability, ↑ modulus | Moderate | Abd Alhay & Jassim 2020; [62]; Benavides et al., 2023 [63] |
| Red Mud | Moderate–High | High | ↑ Fracture energy, ↑ ITS | High (>80% TSR) | Lima et al., 2020 [42]; Zhang et al., 2018 [51]; Saleh et al., 2025 [57] |
| Silica Fume | High (↓ rut depth 58%) | High | ↑ Stiffness, ↑ modulus | High | Deb & Singh, 2023 [55]; Adham et al., 2024 [56] |
| Fly Ash | Moderate–High | Moderate | ↑ Deformation resistance | Moderate–High | Likitlersuang & Chompoorat, 2016 [50]; Saleh et al., 2025 [57] |
| Sulphur | High (with PE/rubber) | Moderate | ↑ Stability | High | Zhou et al., 2021 [53]; Adham et al., 2024 [56] |
| Mine Waste Type | Key Applications | Performance Outcomes | Meets Standards |
|---|---|---|---|
| Red Mud | Filler in dense/porous/cold asphalt, geopolymer binders | ↑ Marshall Stability, ↑ TSR, ↓ Penetration, ↑ Aging Resistance | Yes |
| Fly Ash | Filler in HMA, CMA, geopolymer binders | ↑ Binder stiffness, ↑ Aging resistance, ↑ Workability | Yes |
| Steel Slag | Coarse aggregate, mineral filler | ↑ Rutting resistance, ↑ Skid resistance, ↑ Load distribution | Yes |
| Silica Fume | Filler in CMA, warm mix, bioasphalt | ↑ Adhesion, ↑ Moisture resistance, ↑ Elastic modulus | Yes |
| Copper/Iron Tailings | Limestone filler replacement | ↑ Marshall Stability, ↑ Fatigue resistance, ↓ Thermal susceptibility | Yes |
| Sulphur | Binder modifier with plastic/rubber | ↑ Aging resistance, ↑ Thermal stability, ↑ Water resistance | Yes |
| Property/Test | Standard Requirement | Observed Value from Studies | Source/Material | Meets Standard? |
|---|---|---|---|---|
| Penetration | 40–100 (ASTM D5) | ↓ by 14.7 units (Sintering RM) | Red Mud Binder (Zhang et al., 2018) [51] | ✔ Yes |
| Softening Point | ≥46°C (ASTM D36) | ↑ to 77.5°C | Red Mud Binder (Zhang et al., 2018) [51] | ✔ Yes |
| Ductility | ≥75 cm (ASTM D113) | ~71.2–75.4 cm | Organic Red Mud (Zhang et al., 2018) [51] | ✔ Borderline |
| G*/sin δ (Unaged) | ≥1.0 kPa (AASHTO T315) | 1.29–1.62 kPa | Red Mud Mastic (Wang et al., 2024) [19] | ✔ Yes |
| Aging Resistance (BBR) | S ≤ 300 MPa; m ≥ 0.3 (AASHTO T313) | Met (PG –22 rating) | Red Mud Binder (Wang et al., 2024) [19] | ✔ Yes |
| Marshall Stability | ≥8 kN (ASTM D6927) | 16.68 kN | Red Mud Mix (Choudhary et al., 2019)[60] | ✔ Yes |
| Flow | 2–4 mm | Within Range | Red Mud Mix (Choudhary et al., 2019) [60] | ✔ Yes |
| Indirect Tensile Strength | 500–900 kPa | Within Range | Copper & Red Mud Mix (Choudhary et al., 2019) [60] | ✔ Yes |
| TSR (Moisture Susceptibility) | ≥80% | >85% | Red Mud Mix (Lima et al., 2020) [42] | ✔ Yes |
| Marshall Quotient (MQ) | High = Better Rutting Resistance | 5.23 kN/mm | Red Mud Mix (Giustozzi et al., 2018) [7] | ✔ Yes |
| Softening Point | ≥46°C (ASTM D36) | ↑ to 55.5°C | Silica Fume Bioasphalt (Wang et al., 2024) [19] | ✔ Yes |
| TSR (Moisture Susceptibility) | ≥80% | 82.4% | Silica Fume Mix (Wang et al., 2024) [19] | ✔ Yes |
| Marshall Stability | ≥8 kN (ASTM D6927) | 13.5–15.4 kN | Fly Ash & Steel Slag Mix (Adham et al., 2024) [56] | ✔ Yes |
| Rutting Resistance | ≤12.5 mm rut depth | Reduced rutting depth (qualitative) | Steel Slag Aggregate (Adham et al., 2024) [56] | ✔ Yes |
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