LAPSE:2023.33396
Published Article

LAPSE:2023.33396
Modelling and Experimental Validation of a Hybrid Electric Propulsion System for Light Aircraft and Unmanned Aerial Vehicles
April 21, 2023
Abstract
This article presents a numerical model of an aeronautical hybrid electric propulsion system (HEPS) based on an energy method. This model is designed for HEPS with a total power of 100 kW in a parallel configuration intended for ultralight aircraft and unmanned aerial vehicles (UAV). The model involves the interaction between the internal combustion engine (ICE), the electric motor (EM), the lithium battery and the aircraft propeller. This paper also describes an experimental setup that can reproduce some flight phases, or entire missions, for the reference aircraft class. The experimental data, obtained by reproducing two different take-offs, were used for model validation. The model can also simulate anomalous operating conditions. Therefore, the tests chosen for the model validation are characterized by the EM flux weakening (“de-fluxing”). This model is particularly suitable for preliminary stages of design when it is necessary to characterize the hybrid system architecture. Moreover, this model helps with the choice of the main components (e.g., ICE, EM, and transmission gear ratio). The results of the investigation conducted for different battery voltages and EM transmission ratios are shown for the same mission. Despite the highly simplified model, the average margin of error between the experimental and simulated results was generally under 5%.
This article presents a numerical model of an aeronautical hybrid electric propulsion system (HEPS) based on an energy method. This model is designed for HEPS with a total power of 100 kW in a parallel configuration intended for ultralight aircraft and unmanned aerial vehicles (UAV). The model involves the interaction between the internal combustion engine (ICE), the electric motor (EM), the lithium battery and the aircraft propeller. This paper also describes an experimental setup that can reproduce some flight phases, or entire missions, for the reference aircraft class. The experimental data, obtained by reproducing two different take-offs, were used for model validation. The model can also simulate anomalous operating conditions. Therefore, the tests chosen for the model validation are characterized by the EM flux weakening (“de-fluxing”). This model is particularly suitable for preliminary stages of design when it is necessary to characterize the hybrid system architecture. Moreover, this model helps with the choice of the main components (e.g., ICE, EM, and transmission gear ratio). The results of the investigation conducted for different battery voltages and EM transmission ratios are shown for the same mission. Despite the highly simplified model, the average margin of error between the experimental and simulated results was generally under 5%.
Record ID
Keywords
aircraft, experimental validation, flux weakening, freewheel coupling, hybrid electric propulsion system, Li-ion battery, MATLAB Simulink simulation, parallel configuration, PMSM, specific load speed, unmanned aerial vehicle
Subject
Suggested Citation
Cardone M, Gargiulo B, Fornaro E. Modelling and Experimental Validation of a Hybrid Electric Propulsion System for Light Aircraft and Unmanned Aerial Vehicles. (2023). LAPSE:2023.33396
Author Affiliations
Cardone M: Department of Chemical, Material, and Production Engineering, Engineering Faculty, University of Naples Federico II, 80125 Naples, Italy [ORCID]
Gargiulo B: Department of Chemical, Material, and Production Engineering, Engineering Faculty, University of Naples Federico II, 80125 Naples, Italy [ORCID]
Fornaro E: Department of Industrial Engineering, Engineering Faculty, University of Naples Federico II, 80125 Naples, Italy [ORCID]
Gargiulo B: Department of Chemical, Material, and Production Engineering, Engineering Faculty, University of Naples Federico II, 80125 Naples, Italy [ORCID]
Fornaro E: Department of Industrial Engineering, Engineering Faculty, University of Naples Federico II, 80125 Naples, Italy [ORCID]
Journal Name
Energies
Volume
14
Issue
13
First Page
3969
Year
2021
Publication Date
2021-07-01
ISSN
1996-1073
Version Comments
Original Submission
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PII: en14133969, Publication Type: Journal Article
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LAPSE:2023.33396
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https://doi.org/10.3390/en14133969
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Apr 21, 2023
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