Progress in the Modification and Utilization of Coal Gangue
Abstract
1. Introduction
2. Formation and Physical/Chemical Properties of Coal Gangue
2.1. Formation of Coal Gangue
2.2. Composition of Coal Gangue
| Component | Estimated Content (wt%) | Supplementary Explanation |
|---|---|---|
| SiO2 | 40–70 | Main components; typically >70% in sandstone-type coal gangue |
| Al2O3 | 15–50 | Main components; can exceed 40% in aluminous coal gangue |
| Fe2O3 | 3–20 | Highly variable; content is relatively high in specific iron-rich coal gangue |
| CaO | 1–30 | Can exceed 30% in calcareous coal gangue |
| MgO | 0.5–3 | Usually a minor component |
| K2O | 0.5–5 | Usually a minor component |
| TiO2 | 0.5–1.5 | Trace to minor components |
| Kaolinite | 10–67 | Main clay minerals; relatively high content in producing regions of China and the UK |
| Illite | 5–66 | Common clay minerals; relatively high content in European samples (e.g., Germany, Czech Republic) |
| Montmorillonite | Variable | Present in some expansive clays |
| Feldspar | Variable | Common associated phases |
| Pyrite/Siderite | 0.2–25 | Main source of sulfur; significantly influenced by the sedimentary environment |
2.3. Physical and Chemical Properties of Coal Gangue
3. Modifications of Coal Gangue
3.1. Physical Methods
3.1.1. Screening and Sorting
3.1.2. Comminution and Mechanochemical Activation
3.1.3. Flotation and Gravity Separation
3.2. Chemical Methods
3.2.1. Acid Leaching
3.2.2. Alkaline Activation
3.3. Microbial Modification
3.3.1. Microbial Desulfurization
3.3.2. Microbially Induced Carbonate Precipitation (MICP)
3.3.3. Microbial Degradation (Organic Matter Transformation and Stabilization)

3.4. Thermal Treatment
3.4.1. Pyrolysis and Combustion
3.4.2. High-Temperature Gasification
3.4.3. Calcination Activation
4. Utilization Technologies of Coal Gangue
4.1. Mine Backfilling
4.2. Land Reclamation and Restoration
4.2.1. Assisted Phytoremediation
4.2.2. Soil Reconstruction and Amendment
4.3. Aggregate and Foundation Materials
4.3.1. Concrete
4.3.2. Cement-Stabilized Materials for Road Engineering
4.3.3. Ceramsite
4.4. High-Value Utilization
5. Conclusions
Funding
Data Availability Statement
Conflicts of Interest
References
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| Technology Category | Key Methods | Advantages | Limitations | Efficiency | Cost | Environmental Impact |
|---|---|---|---|---|---|---|
| Physical Activation | Crushing, grinding, screening, flotation | Simple process; improve particle gradation; reduce transportation costs | Cannot deeply alter the crystalline structure; limited added value when used alone; generates dust and noise | High | Low to medium | Medium (dust, noise, land use) |
| Chemical Modification | Acid leaching, alkaline activation | High element extraction efficiency (Al, Fe); significantly increases specific surface area and reaction activity; deep impurity removal | High reagent cost; severe equipment corrosion; safety hazards present; complex wastewater treatment | High | High | High risk (chemical wastewater, acid mist, risk of secondary pollution) |
| Microbial Modification | Biodesulfurization, MICP | Environmentally friendly; low energy consumption; low secondary pollution; possesses in situ remediation potential | Slow reaction kinetics; long processing cycle; sensitive to environmental conditions (pH, temperature); difficult to scale up | Low to medium | Low | Low (green technology, minimal waste) |
| Thermal Treatment | Combustion, pyrolysis, calcination | Significant volume reduction; energy recovery; strong activation effect (pozzolanic activity); destruction of organic pollutants | High energy consumption (for calcination); equipment wear/erosion; potential gas emissions (require purification) | High | Medium to high | Moderate (flue gas emissions, CO2, fly ash) |
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© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
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Lu, X.; Wang, L.; Tang, Y.; Zhou, Y.; Lv, G.; Liao, L. Progress in the Modification and Utilization of Coal Gangue. Minerals 2026, 16, 329. https://doi.org/10.3390/min16030329
Lu X, Wang L, Tang Y, Zhou Y, Lv G, Liao L. Progress in the Modification and Utilization of Coal Gangue. Minerals. 2026; 16(3):329. https://doi.org/10.3390/min16030329
Chicago/Turabian StyleLu, Xingyu, Lijuan Wang, Yuhan Tang, Yi Zhou, Guocheng Lv, and Libing Liao. 2026. "Progress in the Modification and Utilization of Coal Gangue" Minerals 16, no. 3: 329. https://doi.org/10.3390/min16030329
APA StyleLu, X., Wang, L., Tang, Y., Zhou, Y., Lv, G., & Liao, L. (2026). Progress in the Modification and Utilization of Coal Gangue. Minerals, 16(3), 329. https://doi.org/10.3390/min16030329

