Carbon Monoxide Purification Technologies for Diesel-Powered Mining Equipment: A Review
Abstract
1. Introduction
2. Operating Characteristics and Influencing Factors of CO Purification for Mining Diesel Engines
2.1. Exhaust Temperature
CxHy + (x/2 + y/4)O2 → xCO + (y/2)H2O
CO + 1/2O2 → CO2
2.2. Water Vapor
2.3. Sulfur-Containing Species
SO2 + 1/2O2 ⇌ SO3
SO3 + H2O ⇌ H2SO4
SO2 + * ⇌ SO2*
SO2* + O* → SO3* + *
M–O + SO3 → M–SO4
2.4. Explosion-Proof Structures and Exhaust Backpressure
3. Research Progress in CO Purification Technologies for Mining Diesel Engines
3.1. In-Cylinder Control Technologies
3.2. Wet Purification Technologies
3.3. Adsorption and NTP Purification Technologies
3.4. Catalytic Oxidation Technologies
3.5. Applicability Analysis of Different Technologies
4. Research Progress in Low-Temperature Catalytic Oxidation Materials for CO
4.1. Mechanisms of Low-Temperature Catalytic CO Oxidation
O2 + 2* ⇌ 2O*
CO* + O* → CO2 + 2*
V_O + 1/2O2 → O_latt
4.2. Noble-Metal Catalysts
4.3. Transition-Metal and CeO2-Based Reducible Oxide Catalysts
4.4. Single-Atom Catalysts
4.5. Performance Comparison and Mining Applicability of Catalytic Materials
5. Research Progress in Exhaust Aftertreatment Systems for Mining Diesel Engines
5.1. Wet Safety Pretreatment Systems
5.2. Dry Catalytic Aftertreatment Systems Combined with DOC
5.3. Explosion-Proof Structures, Backpressure, and Thermal Management
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| DOC | Diesel oxidation catalyst |
| NTP | Non-thermal plasma |
| EGR | Exhaust gas recirculation |
| DPF | Diesel particulate filter |
| SCR | Selective catalytic reduction |
| CDPF | Catalyzed diesel particulate filter |
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| Technology Route | Main Function | Advantages | Main Limitations | Role in Mining Applications |
|---|---|---|---|---|
| In-cylinder control [43,72,73,74,75] | Reduces CO formation at the source | Does not increase aftertreatment system complexity | Limited by operating conditions, explosion-proof modifications, and pollutant trade-offs | Front-end emission reduction |
| Wet purification [44,45,69,76,77,92] | Exhaust cooling, flame arresting, and dust removal | Well-established in mining applications, with strong safety pretreatment capability | CO has low solubility in water, resulting in limited deep purification capability | Pretreatment/safety unit |
| Adsorptive purification [78,79,80] | Low-temperature adsorption or temporary buffering of some pollutants | Operates at low temperatures, with adjustable material properties | Difficulties in selectivity, capacity, and regeneration; strongly affected by high humidity | Auxiliary purification |
| Non-thermal plasma [82,83,84,85] | Low-temperature activation of oxidation reactions | Good potential for low-temperature reaction activation | Prominent issues related to energy consumption, by-product formation, and explosion-proof electrical safety | Emerging hybrid technology |
| Catalytic oxidation/DOC [19,20,21,70,71] | Converts CO into CO2 | Direct conversion pathway, with a solid application basis in diesel engine aftertreatment | High requirements for low-temperature light-off, water and sulfur tolerance, and backpressure control | Core purification unit |
| Integrated system [46,86,90,93] | Coordinated control of multiple pollutants | Addresses CO, PM, HCs, NOx, and safety constraints simultaneously | Increased structural complexity, pressure drop, and maintenance difficulty | Integrated route with engineering application potential |
| Mechanism Type | Key Steps | Relevance to Mining Applications |
|---|---|---|
| Langmuir–Hinshelwood [50,95,96] | CO and O2 are adsorbed before undergoing a surface reaction | Focuses on CO adsorption strength, O2 activation capability, and low-temperature light-off performance |
| Eley–Rideal [97,98,101] | Gas-phase CO reacts directly with active surface oxygen species | Emphasizes the supply of active oxygen species at low temperatures and rapid surface oxidation capability |
| Mars–van Krevelen [50,51,98,102,103] | Lattice oxygen oxidizes CO, and O2 replenishes oxygen vacancies | Focuses on oxygen-vacancy stability, oxygen migration, and water and sulfur tolerance |
| Material System | Activity Origin | Advantages | Limitations | Future Research Focus |
|---|---|---|---|---|
| Noble-metal catalysts [50,87,94,96] | CO/O2 adsorption and activation; metal–support interfaces | High low-temperature activity and good compatibility with DOC technology | High cost; sensitive to water, sulfur, and thermal aging | Low metal loading, poisoning resistance, and validation under coupled mining exhaust conditions |
| Transition-metal oxides [30,113,116,119,128] | Multivalent redox cycling, lattice oxygen, and oxygen vacancies | Low cost, tunable composition, and relatively abundant elements | Insufficient durability under complex exhaust conditions | Evaluation under coexisting water vapor, sulfur species, and dust, as well as long-term aging |
| CeO2-based reducible oxide systems [26,29,50,102,121,126] | Ce3+/Ce4+ redox cycling, oxygen storage/release, and oxygen migration | Favorable for oxygen activation and interfacial synergy | Susceptible to sulfate formation and hydrothermal aging; Ce loading and resource utilization need consideration | Oxygen-vacancy stabilization, interfacial regulation, and sulfur/water tolerance under coupled conditions |
| Single-atom catalysts [25,27,97,98] | Atomically dispersed active sites and strong metal–support interactions | High metal utilization efficiency and clear mechanistic interpretation | Limited scalability and insufficient long-term stability | Washcoating on monolithic supports and durability under coexisting water vapor, sulfur species, dust, and vibration |
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Hou, C.; Lei, Y.; Liu, C.; Li, C. Carbon Monoxide Purification Technologies for Diesel-Powered Mining Equipment: A Review. Processes 2026, 14, 2225. https://doi.org/10.3390/pr14132225
Hou C, Lei Y, Liu C, Li C. Carbon Monoxide Purification Technologies for Diesel-Powered Mining Equipment: A Review. Processes. 2026; 14(13):2225. https://doi.org/10.3390/pr14132225
Chicago/Turabian StyleHou, Chenghao, Yun Lei, Chengbing Liu, and Cong Li. 2026. "Carbon Monoxide Purification Technologies for Diesel-Powered Mining Equipment: A Review" Processes 14, no. 13: 2225. https://doi.org/10.3390/pr14132225
APA StyleHou, C., Lei, Y., Liu, C., & Li, C. (2026). Carbon Monoxide Purification Technologies for Diesel-Powered Mining Equipment: A Review. Processes, 14(13), 2225. https://doi.org/10.3390/pr14132225

