Serrano, J. R., Novella, R., & Piqueras, P. (2019). Why the Development of Internal Combustion Engines Is Still Necessary to Fight against Global Climate Change from the Perspective of Transportation. Applied Sciences, 9(21), 4597. doi:10.3390/app9214597
Road Transport: Reducing CO2 Emissions from Vehicles. European Commissionhttps://ec.europa.eu/clima/policies/transport/vehicles/cars
Joshi, A. (2020). Review of Vehicle Engine Efficiency and Emissions. SAE Technical Paper Series. doi:10.4271/2020-01-0352
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Serrano, J. R., Novella, R., & Piqueras, P. (2019). Why the Development of Internal Combustion Engines Is Still Necessary to Fight against Global Climate Change from the Perspective of Transportation. Applied Sciences, 9(21), 4597. doi:10.3390/app9214597
Road Transport: Reducing CO2 Emissions from Vehicles. European Commissionhttps://ec.europa.eu/clima/policies/transport/vehicles/cars
Joshi, A. (2020). Review of Vehicle Engine Efficiency and Emissions. SAE Technical Paper Series. doi:10.4271/2020-01-0352
Gohil, D. B., Pesyridis, A., & Serrano, J. R. (2020). Overview of Clean Automotive Thermal Propulsion Options for India to 2030. Applied Sciences, 10(10), 3604. doi:10.3390/app10103604
Jain, A., Krishnasamy, A., & V, P. (2020). Computational optimization of reactivity controlled compression ignition combustion to achieve high efficiency and clean combustion. International Journal of Engine Research, 22(7), 2213-2232. doi:10.1177/1468087420931730
Claßen, J., Pischinger, S., Krysmon, S., Sterlepper, S., Dorscheidt, F., Doucet, M., … Thewes, S. C. (2020). Statistically supported real driving emission calibration: Using cycle generation to provide vehicle-specific and statistically representative test scenarios for Euro 7. International Journal of Engine Research, 21(10), 1783-1799. doi:10.1177/1468087420935221
Di Maio, D., Beatrice, C., Fraioli, V., Napolitano, P., Golini, S., & Rutigliano, F. G. (2019). Modeling of Three-Way Catalyst Dynamics for a Compressed Natural Gas Engine during Lean–Rich Transitions. Applied Sciences, 9(21), 4610. doi:10.3390/app9214610
Reitz, R. D., Ogawa, H., Payri, R., Fansler, T., Kokjohn, S., Moriyoshi, Y., … Zhao, H. (2019). IJER editorial: The future of the internal combustion engine. International Journal of Engine Research, 21(1), 3-10. doi:10.1177/1468087419877990
Kawaguchi, A., Wakisaka, Y., Nishikawa, N., Kosaka, H., Yamashita, H., Yamashita, C., … Tomoda, T. (2019). Thermo-swing insulation to reduce heat loss from the combustion chamber wall of a diesel engine. International Journal of Engine Research, 20(7), 805-816. doi:10.1177/1468087419852013
Luján, J. M., Serrano, J. R., Piqueras, P., & Diesel, B. (2019). Turbine and exhaust ports thermal insulation impact on the engine efficiency and aftertreatment inlet temperature. Applied Energy, 240, 409-423. doi:10.1016/j.apenergy.2019.02.043
Arnau, F. J., Martín, J., Pla, B., & Auñón, Á. (2020). Diesel engine optimization and exhaust thermal management by means of variable valve train strategies. International Journal of Engine Research, 22(4), 1196-1213. doi:10.1177/1468087419894804
Maniatis, P., Wagner, U., & Koch, T. (2018). A model-based and experimental approach for the determination of suitable variable valve timings for cold start in partial load operation of a passenger car single-cylinder diesel engine. International Journal of Engine Research, 20(1), 141-154. doi:10.1177/1468087418817119
Luján, J. M., Bermúdez, V., Piqueras, P., & García-Afonso, Ó. (2015). Experimental assessment of pre-turbo aftertreatment configurations in a single stage turbocharged diesel engine. Part 1: Steady-state operation. Energy, 80, 599-613. doi:10.1016/j.energy.2014.05.048
Luján, J. M., Serrano, J. R., Piqueras, P., & García-Afonso, Ó. (2015). Experimental assessment of a pre-turbo aftertreatment configuration in a single stage turbocharged diesel engine. Part 2: Transient operation. Energy, 80, 614-627. doi:10.1016/j.energy.2014.12.017
Serrano, J. R., Climent, H., Piqueras, P., & Angiolini, E. (2014). Analysis of fluid-dynamic guidelines in diesel particulate filter sizing for fuel consumption reduction in post-turbo and pre-turbo placement. Applied Energy, 132, 507-523. doi:10.1016/j.apenergy.2014.07.043
Joergl, V., Keller, P., Weber, O., Mueller-Haas, K., & Konieczny, R. (2008). Influence of Pre Turbo Catalyst Design on Diesel Engine Performance, Emissions and Fuel Economy. SAE International Journal of Fuels and Lubricants, 1(1), 82-95. doi:10.4271/2008-01-0071
Serrano, J. R., Bermúdez, V., Piqueras, P., & Angiolini, E. (2017). On the impact of DPF downsizing and cellular geometry on filtration efficiency in pre- and post-turbine placement. Journal of Aerosol Science, 113, 20-35. doi:10.1016/j.jaerosci.2017.07.014
Kröcher, O., Elsener, M., Bothien, M.-R., & Dölling, W. (2014). Pre-Turbo Scr - Influence of Pressure on NOx Reduction. MTZ worldwide, 75(4), 46-51. doi:10.1007/s38313-014-0140-x
Bermúdez, V., Serrano, J. R., Piqueras, P., & García-Afonso, O. (2011). Assessment by means of gas dynamic modelling of a pre-turbo diesel particulate filter configuration in a turbocharged HSDI diesel engine under full-load transient operation. Proceedings of the Institution of Mechanical Engineers, Part D: Journal of Automobile Engineering, 225(9), 1134-1155. doi:10.1177/0954407011402278
Payri, F., Serrano, J. R., Piqueras, P., & García-Afonso, O. (2011). Performance Analysis of a Turbocharged Heavy Duty Diesel Engine with a Pre-turbo Diesel Particulate Filter Configuration. SAE International Journal of Engines, 4(2), 2559-2575. doi:10.4271/2011-37-0004
Serrano, J. R., Guardiola, C., Piqueras, P., & Angiolini, E. (2014). Analysis of the Aftertreatment Sizing for Pre-Turbo DPF and DOC Exhaust Line Configurations. SAE Technical Paper Series. doi:10.4271/2014-01-1498
Klaewkla, R., Arend, M., & F., W. (2011). A Review of Mass Transfer Controlling the Reaction Rate in Heterogeneous Catalytic Systems. Mass Transfer - Advanced Aspects. doi:10.5772/22962
Piqueras, P., García, A., Monsalve-Serrano, J., & Ruiz, M. J. (2019). Performance of a diesel oxidation catalyst under diesel-gasoline reactivity controlled compression ignition combustion conditions. Energy Conversion and Management, 196, 18-31. doi:10.1016/j.enconman.2019.05.111
Sampara, C. S., Bissett, E. J., & Chmielewski, M. (2007). Global Kinetics for a Commercial Diesel Oxidation Catalyst with Two Exhaust Hydrocarbons. Industrial & Engineering Chemistry Research, 47(2), 311-322. doi:10.1021/ie070813x
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