Open Access
| Issue |
EPJ Web Conf.
Volume 344, 2025
AI-Integrated Physics, Technology, and Engineering Conference (AIPTEC 2025)
|
|
|---|---|---|
| Article Number | 01013 | |
| Number of page(s) | 5 | |
| Section | AI-Integrated Physics, Technology, and Engineering | |
| DOI | https://doi.org/10.1051/epjconf/202534401013 | |
| Published online | 22 December 2025 | |
- F. J. Kelly and J. C. Fussell, Air pollution and public health: emerging hazards and improved understanding of risk. Environmental Geochemistry and Health. 37, 4, 631–649 (2015). https://doi.org/10.1007/s10653-015-9720-1 [Google Scholar]
- U.S. EPA, History of Air Pollution, Environmental Protection Agency. (2021). https://www.epa.gov/air-research/history-air- pollution [Google Scholar]
- IEA. Energy and Climate Change, International Energy Agency (IEA). 2015. https://doi.org/10.4324/9781315660097-9 [Google Scholar]
- H. Mei et al., Characterization of Exhaust CO, HC and NOx Emissions from Light-Duty Vehicles under Real Driving Conditions. Atmosphere (Basel). 12, 9, 1125 (2021). https://doi.org/10.3390/atmos12091125 [Google Scholar]
- A. Tao, Q. Liang, P. Kuai, and T. Ding, The influence of urban sprawl on air pollution and the mediating effect of vehicle ownership. Processes. 9, 8 (2021). https://doi.org/10.3390/pr9081261 [Google Scholar]
- A. Ghorani-Azam, B. Riahi-Zanjani, and M. Balali-Mood, Effects of air pollution on human health and practical measures for prevention in Iran. Journal of Research in Medical Sciences. 21, 1, 65 (2016). https://doi.org/10.4103/1735-1995.189646 [Google Scholar]
- H. Xue, S. Jiang, and B. Liang, A Study on the Model of Traffic Flow and Vehicle Exhaust Emission. Mathematical Problems in Engineering. 2013, 1–6 (2013). https://doi.org/10.1155/2013/736285 [Google Scholar]
- E. Dobrzyńska et al., Exhaust emissions from diesel engines fueled by different blends with the addition of nanomodifiers and hydrotreated vegetable oil HVO. Environmental Pollution. 259, 113772 (2020). https://doi.org/10.1016/j.envpol.2019.113772 [Google Scholar]
- A. Ghofur, Soemarno, A. Hadi, and M. D. Putra, Potential fly ash waste as catalytic converter for reduction of HC and CO emissions. Sustainable Environment Research. 28, 6, 357–362 (2018). https://doi.org/10.1016/j.serj.2018.07.003 [Google Scholar]
- H. Dong, J. Zhao, J. Chen, Y. Wu, and B. Li, Recovery of platinum group metals from spent catalysts: A review. International Journal of Mineral Processing. 145, 108–113 (2015). https://doi.org/10.1016/j.minpro.2015.06.009 [Google Scholar]
- A. Fornalczyk and M. Saternus, Catalytic converters as a source of platinum. Metalurgija. 50, 4, 261–264 (2011) [Google Scholar]
- U. Bardi and S. Caporali, Precious metals in automotive technology: An unsolvable depletion problem?. Minerals. 4, 2, 388–398 (2014). https://doi.org/10.3390/min4020388 [Google Scholar]
- P. Lang et al., Recent Advances and Prospects of Metal-Based Catalysts for Oxygen Reduction Reaction. Energy Technology. 8, 3, 1900984 (2020). https://doi.org/10.1002/ente.201900984 [Google Scholar]
- H. Heisler, Advanced Engine Technology. Chapman & Hall, London (1998) [Google Scholar]
- K. C. Taylor, Automobile Catalytic Converters. Studies in Surface Science and Catalysis. 1987, 97–116 (1987). https://doi.org/10.1016/S0167-2991(09)60416-X [Google Scholar]
- E. F. Obert, Internal Combustion Engine and Air Pollution. Harper & Row, New York (1973) [Google Scholar]
- Jenbacher, Spark Ignition Engine Design Vol 3. Jenbacher Energy System, Germany (1996) [Google Scholar]
- E. F. Obert, Internal combustion engines and air pollution. (1973) [Google Scholar]
- H. Snyder, Literature review as a research methodology: An overview and guidelines. Journal of Business Research. 104, 333–339 (2019). https://doi.org/10.1016/j.jbusres.2019.07.039 [Google Scholar]
- F. S. Martins, J. A. C. da Cunha, and F. A. R. Serra, Secondary Data in Research – Uses and Opportunities. Revista Ibero-Americana de Estratégia. 17, 4, 1–4 (2018). https://doi.org/10.5585/ijsm.v17i4.2723 [Google Scholar]
- M. B. Miles and M. A. Huberman, Qualitative data analysis: An expanded sourcebook. (1994). https://doi.org/10.1016/0149-7189(96)88232-2 [Google Scholar]
- S. Heikens et al., Three-way Catalysis with Noble Metal-Substituted La(Fe,Co)O3 Perovskites—the Role of Noble and Base Metal Components. Emission Control Science and Technology. 5, 4, 353–362 (2019). https://doi.org/10.1007/s40825- 019-00123-4 [Google Scholar]
- R. Manojkumar et al., I.C. Engine emission reduction using catalytic converter by replacing the noble catalyst and using copper oxide as the catalyst. Materials Today: Proceedings. (2020). https://doi.org/10.1016/j.matpr.2020.02.804 [Google Scholar]
- K. Khivantsev et al., Palladium/Zeolite Low Temperature Passive NOx Adsorbers (PNA): Structure-Adsorption Property Relationships for Hydrothermally Aged PNA Materials. Emission Control Science and Technology. 6, 2, 126–138 (2020). https://doi.org/10.1007/s40825-019-00139- w [Google Scholar]
- M. Masoudi, J. Hensel, and E. Tegeler, A Review of the 2018 U.S.-DOE CLEERS Conference: Trends and Deeper Insights in Reduction of NOx and Particulate in Diesel and Gasoline Engines and Advances in Catalyst Materials, Mechanisms, and Emission Control Technologies. Emission Control Science and Technology. 6, 2, 113–125 (2020). https://doi.org/10.1007/s40825-019-00134-1 [Google Scholar]
- R. M. Bagus Irawan, P. Purwanto, and H. Hadiyanto, Optimum Design of Manganese-coated Copper Catalytic Converter to Reduce Carbon Monoxide Emissions on Gasoline Motor. Procedia Environmental Sciences. 23, 86–92 (2015). https://doi.org/10.1016/j.proenv.2015.01.013 [Google Scholar]
- S. Dey and G. C. Dhal, Controlling carbon monoxide emissions from automobile vehicle exhaust using copper oxide catalysts in a catalytic converter. Materials Today Chemistry. 17, 100282 (2020). https://doi.org/10.1016/j.mtchem.2020.100282 [Google Scholar]
- P. Choudhury and S. Deo, An Innovative Approach for Emission Control Using Copper Plate Catalytic Converter. International Journal of Advanced Science Engineering and Technology. 3, 2, 19–23 (2014) [Google Scholar]
- N. Udhayakumar et al., Study of Emission Characteristics on a CI Engine Using a Cost- effective Cu-Zn-coated Catalytic Converter. Journal of Environmental Nanotechnology. 13, 2, 355–359 (2024). https://doi.org/10.13074/jent.2024.06.242553 [Google Scholar]
- I. Yakoumis, PROMETHEUS: A Copper-Based Polymetallic Catalyst for Automotive Applications. Part I: Synthesis and Characterization. Materials (Basel). 14, 3, 622 (2021). https://doi.org/10.3390/ma14030622 [Google Scholar]
- I. Yakoumis, E. Polyzou, and A. M. Moschovi, PROMETHEUS: A Copper-Based Polymetallic Catalyst for Automotive Applications. Part II: Catalytic Efficiency and Endurance as Compared with Original Catalysts. Materials (Basel). 14, 9, 2226 (2021). https://doi.org/10.3390/ma14092226 [Google Scholar]
- S. Rathore, M. Thakur, and S. S. Deepak, Modeling and Simulation of Four Stroke Spark Ignition Engine with Nano-Particle Coated Catalytic Converter for Analysis of Exhaust Emissions. International Journal of Research in Applied Science and Engineering Technology. 6, 6, 1447–1456 (2018). https://doi.org/10.22214/ijraset.2018.6212 [Google Scholar]
- Y. Shan et al., Selective catalytic reduction of NOx with NH3: opportunities and challenges of Cu- based small-pore zeolites. National Science Review. 8, 10 (2021). https://doi.org/10.1093/nsr/nwab010 [Google Scholar]
- G. Li et al., Effect of iron doping into CeO2–ZrO2 on the properties and catalytic behaviour of Pd-only three-way catalyst for automotive emission control. Journal of Hazardous Materials. 186, 1, 911–920 (2011). https://doi.org/10.1016/j.jhazmat.2010.11.080 [Google Scholar]
- S. Zulfugarova et al., Cobalt-Containing Oxide Catalysts Obtained by The Sol-Gel Method with Auto-Combustion in The Reaction of Low- Temperature Oxidation of Carbon Monoxide. Journal of the Turkish Chemical Society Section A: Chemistry. 10, 3, 577–588 (2023). https://doi.org/10.18596/jotcsa.1261839 [Google Scholar]
- M. Usman et al., Electrochemical Reduction of CO2: A Review of Cobalt Based Catalysts for Carbon Dioxide Conversion to Fuels. Nanomaterials. 11, 8, 2029 (2021). https://doi.org/10.3390/nano11082029 [Google Scholar]
- X. Li et al., A Review of Mn-Based Catalysts for Abating NOx and CO in Low-Temperature Flue Gas: Performance and Mechanisms. Molecules. 28, 19, 6885 (2023). https://doi.org/10.3390/molecules28196885 [Google Scholar]
- B. Zhang et al., Manganese acting as a high- performance heterogeneous electrocatalyst in carbon dioxide reduction. Nature Communications. 10, 1, 2980 (2019). https://doi.org/10.1038/s41467- 019-10854-1 [Google Scholar]
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