A New Generation of Hydrogen-Fueled Hybrid Propulsion Systems for the Urban Mobility of the Future

Author:

Arsie Ivan1ORCID,Battistoni Michele2ORCID,Brancaleoni Pier Paolo3ORCID,Cipollone Roberto4ORCID,Corti Enrico3ORCID,Di Battista Davide4ORCID,Millo Federico5ORCID,Occhicone Alessio1,Peiretti Paradisi Benedetta5ORCID,Rolando Luciano5ORCID,Zembi Jacopo2ORCID

Affiliation:

1. Department of Engineering, Università degli Studi di Napoli Parthenope, 80143 Naples, Italy

2. Department of Engineering, Università degli Studi di Perugia, 06125 Perugia, Italy

3. Department of Industrial Engineering, Università degli Studi di Bologna, 40126 Bologna, Italy

4. Department of Industrial and Information Engineering and Economics, Università dell’Aquila, 67100 L’Aquila, Italy

5. Energy Department, Politecnico di Torino, 10129 Turin, Italy

Abstract

The H2-ICE project aims at developing, through numerical simulation, a new generation of hybrid powertrains featuring a hydrogen-fueled Internal Combustion Engine (ICE) suitable for 12 m urban buses in order to provide a reliable and cost-effective solution for the abatement of both CO2 and criteria pollutant emissions. The full exploitation of the potential of such a traction system requires a substantial enhancement of the state of the art since several issues have to be addressed. In particular, the choice of a more suitable fuel injection system and the control of the combustion process are extremely challenging. Firstly, a high-fidelity 3D-CFD model will be exploited to analyze the in-cylinder H2 fuel injection through supersonic flows. Then, after the optimization of the injection and combustion process, a 1D model of the whole engine system will be built and calibrated, allowing the identification of a “sweet spot” in the ultra-lean combustion region, characterized by extremely low NOx emissions and, at the same time, high combustion efficiencies. Moreover, to further enhance the engine efficiency well above 40%, different Waste Heat Recovery (WHR) systems will be carefully scrutinized, including both Organic Rankine Cycle (ORC)-based recovery units as well as electric turbo-compounding. A Selective Catalytic Reduction (SCR) aftertreatment system will be developed to further reduce NOx emissions to near-zero levels. Finally, a dedicated torque-based control strategy for the ICE coupled with the Energy Management Systems (EMSs) of the hybrid powertrain, both optimized by exploiting Vehicle-To-Everything (V2X) connection, allows targeting H2 consumption of 0.1 kg/km. Technologies developed in the H2-ICE project will enhance the know-how necessary to design and build engines and aftertreatment systems for the efficient exploitation of H2 as a fuel, as well as for their integration into hybrid powertrains.

Funder

Ministero dell’Istruzione, dell’Università e della Ricerca

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

Reference75 articles.

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2. IEA (2023, July 31). Largest End Uses of Energy by Sector in Selected IEA Countries. Available online: https://www.iea.org/data-and-statistics/charts/largest-end-uses-of-energy-by-sector-in-selected-iea-countries-2019.

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