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Design Optimization of the Transmission System for Electric Vehicles Considering the Dynamic Efficiency of the Regenerative Brake

机译:考虑再生制动器动态效率的电动车辆传动系统的设计优化

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In this paper, gear ratios of a two-speed transmission system are optimized for an electric passenger car. Quasi static system models, including the vehicle model, the motor, the battery, the transmission system, and drive cycles are established in MATLAB/Simulink at first. Specifically, since the regenerative braking capability of the motor is affected by the SoC of battery and motors torque limitation in real time, the dynamical variation of the regenerative brake efficiency is considered in this study. To obtain the optimal gear ratios, iterations are carried out through Nelder-Mead algorithm under constraints in MATLAB/Simulink. During the optimization process, the motor efficiency is observed along with the drive cycle, and the gear shift strategy is determined based on the vehicle velocity and acceleration demand. Simulation results show that the electric motor works in a relative high efficiency range during the whole drive cycle. The energy economy of the case-study vehicle with the optimized a two-speed transmission is also compared to that of the baseline vehicle with fixed-ratio reduction gear.
机译:本文针对电动轿车优化了双速传输系统的齿轮比。在Matlab / Simulink首先在Matlab / Simulink中建立了准静态系统模型,包括车型,电机,电池,传输系统和驱动循环。具体地,由于电动机的再生制动能力受电池和电动机的SOC实时影响,因此在该研究中考虑了再生制动效率的动态变化。为了获得最佳齿轮比,通过在Matlab / Simulink的约束下通过Nelder-Mead算法进行迭代。在优化过程中,与驱动循环一起观察到电动机效率,并且基于车速和加速度需求确定换档策略。仿真结果表明,电动机在整个驱动周期内的相对高效率范围内工作。案例研究车辆的能量经济与优化的双速度传输相比,与基线车辆的固定比率减小齿轮的优化。

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