基于超级电容器和无刷直流电机的电动汽车再生制动

R. Revathy, B. Balaji, A. K. Abdul Mohasin, A. Gobinath
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摘要

在当今的现代世界中,电动汽车起着至关重要的作用。针对无刷直流(BLDC)电机驱动的电动汽车,建议采用再生电制动系统来提高储能系统的效率。电池、逆变器、电机和充电口是电动汽车的主要组成部分。然而,车辆的动力系统是一个关键部件。电动机电动汽车的设计应考虑其效率和成本。本文对电机的功率重量比、转速、转矩和成本进行了比较和分析。由于其更高的功率重量比,尽管较高的维护和控制器费用,无刷直流电机被证明是最适合电动汽车。其次,提出了电动汽车再生制动系统,并对其性能进行了研究。再生制动包括利用电动汽车电机的发电机功能将机械能转换为电能。再生制动将其动能转换并保存在存储装置中。这项技术提高了行驶里程或减少了车辆的燃料使用量。所研究的系统由无刷直流电机、Buck-Boost直流变换器和超级电容器组成。优化了合适的控制系统,将能量存储在超级电容器中。通过本研究,可以改善电动汽车的能量流调节,实现每次充电循环的最大续航里程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Supercapacitor and BLDC Motor-based Regenerative Braking for an Electric Vehicles
In today’s modern world, Electric vehicles play a critical role. For a brushless DC (BLDC) motor-driven electric vehicle, regenerative electric braking system is suggested (EV) to enhance the efficiency of energy storage system. A battery, inverter, motor and charging port is the major components included in an electric vehicle. However the vehicle’s power train is a key component. The motor’s electric vehicle should be designed based on its efficiency and cost. The power-weight ratio, speed, torque and cost of motors are compared and analyzed in this research. Because of its greater power-to-weight ratio in spite of higher maintenance and controller expenses, the BLDC motor is demonstrated to be the most suitable for an electric vehicle. Next, the regenerative braking for electric vehicles is proposed and its performance is investigated. Regenerative braking involves using the generator function of an electric car’s motor to convert mechanical energy into electrical energy. Regenerative braking converts its kinetic energy and saves it in storage devices. This technique upsurges the range or decreases the fuel usage of a vehicle. The system under study is composed of a brushless DC motor, a Buck-Boost DC converter, and super capacitors. The suitable control system is optimized to store the energy in the super capacitors. With the help of this research, electric car energy flow regulation will be improved and the maximum range per charge cycle will be realized.
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