Updated number forecast, russian car fleet structures by type of power plants and greenhouse gas emissions until 2050

Author:

Trofimenko IU. V.1ORCID,Komkov V. I.1ORCID

Affiliation:

1. Moscow Automobile and Road Construction State Technical University (MADI)

Abstract

Introduction. The results of forecast estimation of the number, structure of the Russian motor vehicle fleet by type of power units and greenhouse gas (GHG) emissions up to 2050 are presented, taking into account the update of the initial data used in the calculations and the assumption that it will be decided to stop production of passenger cars with internal combustion engines starting from 2045. Materials and methods. The forecast of the level of motorization, the number of vehicle fleet by type of power plant and fuel type, environmental class were estimated taking into account the renewal of the fleet, the balance of supply and disposal of ATVs. These data are given in the forms of state statistical reporting, long-term strategies of transport industry development, partly generated by researchers themselves. The Copert 5 methodology was also used to calculate greenhouse gas emissions.Results. Compared to earlier projections, the value of total GHG emissions of the vehicle fleet in 2050 according to the current projection will be about the same as in 2045, i.e. will be 5 years behind. Discussion and conclusions. In the near term, the rate of decarbonization of road transport in Russia may slow down significantly. Vehicles with internal combustion engines using hydrocarbon fuels (liquid, gaseous) will still dominate the vehicle fleet by 2050.

Publisher

Siberian State Automobile and Highway University (SibADI)

Subject

General Medicine

Reference15 articles.

1. Tyson, K.S. Biodiesel – the Clean, Green Fuel for Diesel Engines. U.S. Department of Energy National Renewable Energy Laboratory, 2000, available at: https://p2infohouse.org/ref/38/37713.pdf.

2. Ji, M.; Wei, Z. Review of Water Management in Polymer Electrolyte Membrane Fuel Cells. Energies, 2009, available at: http://www.mdpi.com/1996-1073/2/4/1057/htm.

3. Russ, J. New Frontiers in Solar Cell Conversion Efficiency. Spectrolab, Inc., 2009.

4. Ehsani, M.; Gao, Y. Modern Electric, Hybrid Electric and Fuel Cell Vehicles Fundamentals Theory and Design. Second edition. A. Emadi, CRC Press, 2010. 558 p.

5. Kalghatgi, G. Development of Fuel/Engine Systems - The Way Forward to Sustainable. Transport Engineering. 2019; Vol. 5: 510-518. DOI: https://doi.org/10.1016/j.eng.2019.01.009.

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