Influence of Motor Power and Efficiency on Fuel Consumption of Retrofit-Conversion Split-Parallel Hybrid Electric Vehicle
Saiful A. Zulkifli, Syaifuddin Mohd, Nordin Saad, A. Rashid A. Aziz
Abstract
Saiful A. Zulkifli, Syaifuddin Mohd, Nordin Saad, A. Rashid A. Aziz
Abstract
A split-axle parallel hybrid drivetrain with in- wheel motors allows for existing fuel-powered vehicles to be converted into a hybrid electric vehicle (HEV) with minor mechanical modification, to result in a retrofit-conversion HEV. This is achieved by placing electric motors in the hubs of the otherwise non-driven wheels. Due to the small design space of the wheel hub, the size and power of the in-wheel motor that can be installed is severely restricted to less than 10kW per wheel, raising the concern of actual performance in improvement in the converted hybrid vehicle. This work analyzes the impact of motor size and efficiency on fuel economy of three different converted hybrid vehicles, through simulation using rule-based control strategy. Results provide insight into the sensitivity of different-sized vehicles to the size and efficiency of the retrofitted electric motor.
OpenAlex reports 13 citations for this work. Citation counts describe recorded attention and do not establish research quality.
A contribution statement is not available in the OpenAlex record.
Method details are not available in the OpenAlex metadata.
Findings are not separately available in the OpenAlex metadata.
Limitations are not available in the OpenAlex metadata.
Application details are not available in the OpenAlex metadata.
A split-axle parallel hybrid drivetrain with in- wheel motors allows for existing fuel-powered vehicles to be converted into a hybrid electric vehicle (HEV) with minor mechanical modification, to result in a retrofit-conversion HEV. This is achieved by placing electric motors in the hubs of the otherwise non-driven wheels. Due to the small design space of the wheel hub, the size and power of the in-wheel motor that can be installed is severely restricted to less than 10kW per wheel, raising the concern of actual performance in improvement in the converted hybrid vehicle. This work analyzes the impact of motor size and efficiency on fuel economy of three different converted hybrid vehicles, through simulation using rule-based control strategy. Results provide insight into the sensitivity of different-sized vehicles to the size and efficiency of the retrofitted electric motor.
Key concepts: Drivetrain, Automotive engineering, Fuel efficiency, Hybrid vehicle, Electric vehicle, Torque, Electric motor, Axle