A Multipurpose Simulation Approach for Hybrid Electric Vehicles to Support the European CO2 Emissions Framework

Author:

Tansini Alessandro1ORCID,Fontaras Georgios1ORCID,Millo Federico2ORCID

Affiliation:

1. European Commission’s Joint Research Centre, 21027 Ispra, Italy

2. Department of Energy (DENERG), Politecnico di Torino, 10129 Torino, Italy

Abstract

Hybrid Electric Vehicles (HEVs) are a prominent solution for reducing CO2 emissions from transport in Europe. They are equipped with at least two propulsion energy converters, an Internal Combustion Engine (ICE) and one or more Electric Machines (EMs), operated in a way to exploit synergies and achieve fuel efficiency. Because of the variety in configurations and strategies, the use of simulation is essential for vehicle development and characterisation of energy consumption. This paper introduces a novel simulation approach to estimate the CO2 emissions from different hybrid architectures (series, parallel, power-split) and electrification degrees (mild, full, plug-in and range extender) that is relatively simple, flexible and accurate. The approach identifies the optimal power split between the energy converters for any given time in a driving cycle according to three evaluation levels: supervisor, ICE manager and optimiser. The latter relies on the Equivalent Consumption Minimisation Strategy (ECMS) and the limitations imposed by the other two layers. Six light-duty HEVs with different hybrid architectures were tested to support the development of the approach. The results show an indicative accuracy of ±5%, enabling to run assessments of hybrid powertrain solutions and supporting regulatory and consumer information initiatives.

Publisher

MDPI AG

Subject

Atmospheric Science,Environmental Science (miscellaneous)

Reference43 articles.

1. European Commission (2023, March 16). Regulation (EU) 2021/1119 of the European Parliament and of the Council of 30 June 2021 Establishing the Framework for Achieving Climate Neutrality and Amending Regulations (EC) No 401/2009 and (EU) 2018/1999 (‘European Climate Law’). Available online: http://data.europa.eu/eli/reg/2021/1119/oj.

2. The International Council on Clean Transportation (2023, March 16). Hybrid Vehicles: Technology Development And Cost Reduction. Available online: https://theicct.org/publication/hybrid-vehicles-trends-in-technology-development-and-cost-reduction.

3. ACEA (2023, March 16). Fuel Types of New Cars: Petrol 52.3%, Diesel 29.9%, Electric 6.8% Market Share First Quarter of 2020. Available online: https://www.acea.auto/fuel-pc/fuel-types-of-new-cars-petrol-52-3-diesel-29-9-electric-6-8-market-share-first-quarter-of-2020.

4. ACEA (2023, March 16). Fuel Types of New Vans: Diesel 92.8%, Electric 1.2%, Alternative Fuels 1.3% Market Share in 2019. Available online: https://www.acea.auto/fuel-cv/fuel-types-of-new-vans-diesel-92-8-electric-1-2-alternative-fuels-1-3-market-share-in-2019.

5. ACEA (2023, March 16). Fuel Types of New Buses: Diesel 85%, Hybrid 4.8%, Electric 4%, Alternative Fuels 6.2% Share in 2019. Available online: https://www.acea.auto/fuel-cv/fuel-types-of-new-buses-diesel-85-hybrid-4-8-electric-4-alternative-fuels-6-2-share-in-2019-2.

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