Design Procedure and Testing for the Electrification of a Maintenance Railway Vehicle

Author:

D’Amato Davide1,Lorito Marco2,Monopoli Vito Giuseppe1ORCID,Consoletti Rinaldo1,Maiellaro Giuseppe2,Cupertino Francesco1

Affiliation:

1. Department of Electrical and Information Engineering, Politecnico di Bari, Via E. Orabona, 4, 70125 Bari, Italy

2. Tesmec Rail Srl, Via A. Fogazzaro, 51, 70043 Monopoli, Italy

Abstract

In response to climate change, governments around the world have committed to reducing greenhouse gas emissions, which contribute to global warming, through the energy transition from fossil fuels to renewable energy sources and electrification of transportation. This article outlines the design procedure for the electrification of a railway vehicle used for maintenance services on the rail network. The proposed methodology consists of the design of both an all-electric propulsion system and storage system with the aim of zero emissions when the vehicle is operating in tunnels and to minimise noise during maintenance services in cities. After highlighting the characteristics of the railway vehicle under consideration, a simulation model of the propulsion and generation system was developed in order to calculate the energy consumption of the entire railway system. Finally, experimental tests carried out on the prototype proved the effectiveness of the design procedure adopted and the proposed mathematical model, showing a good matching with the simulated results.

Funder

Regione Puglia

Publisher

MDPI AG

Subject

Energy (miscellaneous),Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment,Electrical and Electronic Engineering,Control and Optimization,Engineering (miscellaneous),Building and Construction

Reference42 articles.

1. International Energy Agency (IEA), and International Union of Railways (UIC) (2017). Railway Handbook 2017—Energy Consumption and CO2 Emissions, IEA. Tech. Rep. 6.

2. European Commission (2008). 2020 by 2020 Europe’s Climate Change Opportunity, European Commission. COM (2008) 30 Final.

3. UIC, and CER (2021, January 28). Moving towards Sustainable Mobility: A Strategy for 2030 and beyond for the European Railway Sector, Paris. Available online: http://www.cer.be/sites/default/files/publication/CER-UIC_Sustainable_Mobility_Strategy_-_SUMMARY.pdf.

4. UN (2021, January 22). Kyoto Protocol to the United Nations Framework Convention on Climate Change, Kyoto. Available online: https://unfccc.int/resource/docs/convkp/kpeng.pdf.

5. UN (2021, January 22). Paris Agreement, Paris. Available online: https://unfccc.int/sites/default/files/english_paris_agreement.pdf.

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