Abstract

For four-wheel independently driven in-wheel motor electric vehicles, the four-wheel drive/braking torque can be controlled independently. Therefore, it has an advantage that energy saving control can be applied effectively. This article studies several energy saving control methods from two levels of driving and braking for four-wheel independently driven in-wheel motor electric vehicles under urban conditions based on the motor efficiency map. First, the energy saving control logic and the evaluation index were proposed in the article. The four-wheel drive torque was online optimized in real time through drive energy saving control, in order to improve the driving efficiency in the driving process of electric vehicles. According to the theory of ideal braking force distribution and Economic Commission of Europe braking regulations, the parallel regenerative braking control method based on the motor efficiency map was then studied. The parallel regenerative braking control method was applied to four-wheel independently driven in-wheel motor electric vehicles. The simulation analysis under typical urban driving cycle conditions was carried out to determine the braking intensity of the parallel brake front axle separate regenerative braking, and finally the braking energy recovery rate of electric vehicle can be improved in the low speed and low braking torque. Finally, simulation experiments have been carried out to verify the researched method under the NEDC, UDDS, and J1015 urban driving cycles. The simulation results show that the energy saving control methods have an obvious effect on energy saving under the urban driving cycle conditions.

Highlights

  • IntroductionDrivers tend to accelerate and brake vehicles frequently

  • In urban driving, drivers tend to accelerate and brake vehicles frequently

  • The European NEDC is a new European driving cycle. It consists of four ECE working conditions and one Extra Urban Driving Cycle (EUDC) working condition

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Summary

Introduction

Drivers tend to accelerate and brake vehicles frequently He et al.[1] developed an analytical model to investigate the dynamic characteristics of powertrain systems in the process of variable-speed vehicles; it has some guidance for using transmission and differential vehicle drive system development. Advances in Mechanical Engineering vehicle, its stability and energy saving performance can be controlled through adjusting drive and braking torque at each wheel. He et al.[2] proposed a robot control design method, which sheds some light on the fourwheel independently driven in-wheel motor electric vehicle controller design and vehicle motion tracking control. Energy saving control for electric vehicle is of great significance for increasing drive mileage

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