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Article

Comparative Analysis of Energy Consumption and Performance Metrics in Fuel Cell, Battery, and Hybrid Electric Vehicles Under Varying Wind and Road Conditions

by
Ahmed Hebala
*,
Mona I. Abdelkader
and
Rania A. Ibrahim
Electric and Control Engineering Department, College of Engineering and Technology, Arab Academy for Science, Technology and Maritime Transport, Alexandria 21937, Egypt
*
Author to whom correspondence should be addressed.
Technologies 2025, 13(4), 150; https://doi.org/10.3390/technologies13040150
Submission received: 2 March 2025 / Revised: 3 April 2025 / Accepted: 4 April 2025 / Published: 9 April 2025
(This article belongs to the Special Issue Next-Generation Distribution System Planning, Operation, and Control)

Abstract

As global initiatives to reduce greenhouse gas emissions and combat climate change expand, electric vehicles (EVs) powered by fuel cells and lithium-ion batteries are gaining global recognition as solutions for sustainable transportation due to their high energy conversion efficiency. Considering the driving range limitations of battery electric vehicles (BEVs) and the low efficiency of internal combustion engines (ICEs), fuel cell hybrid vehicles offer a compelling alternative for long-distance, low-emission driving with less refuelling time. To facilitate their wider scale adoption, it is essential to understand their energy performance through models that consider external weather effects, driving styles, road gradients, and their simultaneous interaction. This paper presents a microlevel, multicriteria assessment framework to investigate the performance of BEVs, fuel cell electric vehicles (FCEVs), and hybrid electric vehicles (HEVs), with a focus on energy consumption, drive systems, and emissions. Simulation models were developed using MATLAB 2021a Simulink environment, thus enabling the integration of standardized driving cycles with real-world wind and terrain variations. The results are presented for various trip scenarios, employing quantitative and qualitative analysis methods to identify the most efficient vehicle configuration, also validated through the simulation of three commercial EVs. Predictive modelling approaches are utilized to estimate a vehicle’s performance under unexplored conditions. Results indicate that trip conditions have a significant impact on the performance of all three vehicles, with HEVs emerging as the most efficient and balanced option, followed by FCEVs, making them strong candidates compared with BEVs for broader adoption in the transition toward sustainable transportation.
Keywords: driving cycle; electric vehicle; energy consumption prediction; energy management; fuel cell; FCEV; hybrid EV; regression; road grade; weather conditions driving cycle; electric vehicle; energy consumption prediction; energy management; fuel cell; FCEV; hybrid EV; regression; road grade; weather conditions

Share and Cite

MDPI and ACS Style

Hebala, A.; Abdelkader, M.I.; Ibrahim, R.A. Comparative Analysis of Energy Consumption and Performance Metrics in Fuel Cell, Battery, and Hybrid Electric Vehicles Under Varying Wind and Road Conditions. Technologies 2025, 13, 150. https://doi.org/10.3390/technologies13040150

AMA Style

Hebala A, Abdelkader MI, Ibrahim RA. Comparative Analysis of Energy Consumption and Performance Metrics in Fuel Cell, Battery, and Hybrid Electric Vehicles Under Varying Wind and Road Conditions. Technologies. 2025; 13(4):150. https://doi.org/10.3390/technologies13040150

Chicago/Turabian Style

Hebala, Ahmed, Mona I. Abdelkader, and Rania A. Ibrahim. 2025. "Comparative Analysis of Energy Consumption and Performance Metrics in Fuel Cell, Battery, and Hybrid Electric Vehicles Under Varying Wind and Road Conditions" Technologies 13, no. 4: 150. https://doi.org/10.3390/technologies13040150

APA Style

Hebala, A., Abdelkader, M. I., & Ibrahim, R. A. (2025). Comparative Analysis of Energy Consumption and Performance Metrics in Fuel Cell, Battery, and Hybrid Electric Vehicles Under Varying Wind and Road Conditions. Technologies, 13(4), 150. https://doi.org/10.3390/technologies13040150

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