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Perturbation rejection control strategy of batteries/supercapacitors hybrid power sources for hybrid electric vehicles

机译:混合动力汽车电池/超级电容器混合动力源的摄动抑制控制策略

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A hybrid electric vehicle (HEV) composed of an internal combustion engine (ICE) and a permanent magnet synchronous machine (PMSM) is considered in this paper. Batteries supply power to the PMSM. Referring to previous studies, other than delivering driving forces, PMSM can be exploited as an "active flywheel" and compensate the torque ripples generated by the ICE. These ripples are thus delivered to the DC bus, and result in an oscillating current in the battery, which will severely reduce the battery lifetime. Taking this into consideration, this paper aims to design an "active damping" so as to attenuate the oscillations in the DC bus voltage. This is achieved by connecting a supercapacitor in parallel with the battery, and constructing an effective controller. The influence of the current ripples is modeled as an external current perturbation. Moreover, transients and nonstationary fluctuations of the vehicles are considered as another perturbation. In order to realize perturbation rejection, a nonlinear control strategy with an inner fast loop and an outer slow loop is proposed. The controller is based on system passivity and energy distribution. The effectiveness of the control algorithm is verified through simulation.
机译:本文考虑了由内燃机(ICE)和永磁同步电机(PMSM)组成的混合动力汽车(HEV)。电池为PMSM供电。参考以前的研究,除了提供驱动力外,PMSM还可以用作“主动飞轮”,并补偿ICE产生的转矩脉动。这些纹波因此传递到DC总线,并在电池中产生振荡电流,这将严重缩短电池寿命。考虑到这一点,本文旨在设计一种“主动阻尼”以衰减直流母线电压中的振荡。这是通过将超级电容器与电池并联连接并构造有效的控制器来实现的。电流纹波的影响被建模为外部电流扰动。此外,车辆的瞬态和非平稳波动被认为是另一种扰动。为了实现扰动抑制,提出了一种具有内快环和外慢环的非线性控制策略。该控制器基于系统的无源性和能量分配。通过仿真验证了该控制算法的有效性。

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