电动汽车再生制动试验循环仿真

Roberta Di Fonso, Carlo Cecati
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引用次数: 1

摘要

在不久的将来,电动汽车将因其更广泛的功能和更低的尾气排放而无处不在。然而,目前,关于远程运行的能量存储仍然存在一些问题。因此,采用尽可能多的策略来保持电池的充电状态(SoC)是很重要的。第一个重要的策略与驾驶风格有关,以尽量减少频繁的加速-制动序列。一旦满足了这个条件,下一步的策略可能是在制动时对电池进行部分充电,以恢复汽车质量的动能。本文对车轮由永磁同步电机驱动的简单机械四分之一小车模型进行了仿真。重点是电机的电气控制和能量回收。PMSM可以在任何情况下加速和刹车,但这种解决方案也会在刹车时耗尽电池。有一个更好的策略,使用再生制动(电池充电)和耗散机械制动的组合。为了获得有意义的结果,模拟遵循了为纯电动汽车(PEV)开发的全球统一轻型车辆测试周期(WLTC)的第3类时间-速度数据点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Test cycle simulation of an electric car with regenerative braking
In the near future electric cars will be ubiquitous thanks to their wider functionalities and to their much lower tailpipe emissions to the environment. However, at present, there are still problems concerning the storage of energy for long range operation. It is therefore important to employ strategies to preserve the State of Charge (SoC) of batteries as much as possible. The first important strategy is related to the driving style in order to minimize frequent acceleration-braking sequences. Once this condition has been met, the next strategy could be the partial recharge of battery during braking, recovering the kinetic energy of the car mass. This paper presents the simulation of a simple mechanical quarter-car model whose wheel is driven by a Permanent Magnet Synchronous Motor (PMSM) motor. The focus is on the electric control of the motor and on the energy recovery. The PMSM could accelerate and brake the car in all conditions, but this solution depletes the battery also in braking. There is a better strategy that use a combination of regenerative braking (battery recharge) and dissipative mechanical braking. In order to produce meaningful results, the simulations follow the class 3 time-speed data points of the Worldwide Harmonized Light vehicles Test Cycles (WLTC) developed for Pure Electric Vehicles (PEV).
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