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Design and implementation of a loss optimization control for electric vehicle in-wheel permanent-magnet synchronous motor direct drive system

机译:电动汽车轮毂永磁同步电动机直接驱动系统损失优化控制的设计与实现

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摘要

As a main driving force of electric vehicles (EVs), the losses of in-wheel permanent-magnet synchronous motor (PMSM) direct drive system can seriously affect the energy consumption of EVs. This paper proposes a loss optimization control strategy for in-wheel PMSM direct drive system of EVs which optimizes the losses of both the PMSM and the inverter. The proposed method adjusts the copper losses and iron losses by identifying the optimal flux-weakening current, which results in the PMSM achieving the lower losses in the whole operational range. Moreover there are strongly nonlinear characteristics for the power devices, this paper creates a nonlinear loss model for three-phase half-bridge inverters to obtain accurate inverter losses under space vector pulse width modulation (SVPWM). Based on the inverter loss model and double Fourier integral analysis theory, the PWM frequency is optimized by the control strategy in order to maximize the inverter efficiency without affecting the operational stability of the drive. The proposed loss optimization control strategy can quickly find the optimum flux-weakening current and PWM frequency, and as a result, significantly broaden the high efficiency area of the PMSM direct drive system. The effects of the aforementioned strategy are verified by both theoretical analysis and experimental results.
机译:轮内永磁同步电动机(PMSM)直接驱动系统作为电动汽车的主要驱动力,会严重影响电动汽车的能耗。提出了一种电动汽车轮毂永磁同步电机直接驱动系统的损耗优化控制策略,该策略可以优化永磁同步电机和逆变器的损耗。所提出的方法通过确定最佳的弱磁电流来调节铜损和铁损,从而使PMSM在整个工作范围内实现较低的损耗。此外,功率器件具有很强的非线性特性,本文针对三相半桥逆变器建立了非线性损耗模型,以在空间矢量脉冲宽度调制(SVPWM)下获得准确的逆变器损耗。基于逆变器损耗模型和双重傅里叶积分分析理论,通过控制策略优化PWM频率,以在不影响驱动器运行稳定性的情况下最大化逆变器效率。所提出的损耗优化控制策略可以快速找到最佳的弱磁通电流和PWM频率,从而显着拓宽了PMSM直接驱动系统的高效区域。理论分析和实验结果均验证了上述策略的效果。

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