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Loss Minimization Control of Permanent Magnet Synchronous Machine for Electric Vehicle Applications

机译:电动汽车用永磁同步电机的损耗最小化控制

摘要

With the limits of power source taken into consideration, the efficiency of the traction drive is of particular importance in the engineering of electric vehicle and plug-in hybrid electric vehicle (EV/PHEV). Thanks to its high power density, high efficiency and high torque to weight ratio, Permanent Magnet Synchronous Machine (PMSM) distinguishes itself from other traction system candidates in the EV/PHEV application market. This research sets out to explore how the control strategy of PMSM can be optimized so as to achieve a better efficiency performance of EV/PHEV. udPrior research has put forth Loss Minimization Control Strategy (LMC) and developed its algorithm by considering a certain operating point. The focus has been placed on how to approximately solve the optimal current reference from a high order expression. So far, very limited effort has been made toward a generalized form of LMC algorithm over the full machine operation region, i.e. constant torque and constant power region. In this thesis, a generalized relationship between d-q current for the LMC of PMSM is presented, and maximum torque per ampere (MTPA) and maximum torque per voltage (MTPV) can be derived as special cases of LMC. The proposed control strategy shows better response and enhancement of the machine efficiency over full speed range when compared to conventional control strategies.udIn order to develop the control method, the machine operation principle is discussed first, and the machine model is built for the control purpose. Then based on the analysis of PMSM operation performance with voltage and current constrains, the boundary of the machine operating is defined. In the light of literature review, the LMC is derived from the equivalent model of PMSM by considering the core loss. And the performance of the LMC is analyzed in detail for both constant torque and constant power region. In addition, the effects of parameters variation are investigated. Thus the control strategy is improved by considering full speed range. A Simulink model of PMSM with core loss taken into consider is developed to test the proposed control method. The experiment is performed on a lab surface-mounted PMSM. The experiment results are found to be consistent with simulation results. ud
机译:考虑到电源的限制,牵引驱动的效率在电动汽车和插电式混合电动汽车(EV / PHEV)的工程中尤为重要。凭借其高功率密度,高效率和高转矩重量比,永磁同步电机(PMSM)在EV / PHEV应用市场中与其他牵引系统候选产品脱颖而出。本研究着手探讨如何优化PMSM的控制策略,以实现EV / PHEV的更高效率。 ud先前的研究提出了损耗最小化控制策略(LMC),并通过考虑某个工作点来开发其算法。重点已放在如何从高阶表达式近似求解最佳电流参考上。到目前为止,在整个机器操作区域,即恒定转矩和恒定功率区域上,对LMC算法的一般形式所做的工作非常有限。本文提出了永磁同步电动机LMC的d-q电流的一般关系,作为LMC的特殊情况,可以推导出最大安培最大转矩(MTPA)和最大安培最大电压(MTPV)。与常规控制策略相比,所提出的控制策略在全速范围内表现出更好的响应并提高了机器效率。 ud为了开发控制方法,首先讨论了机器的工作原理,并建立了用于控制的机器模型目的。然后基于对电压和电流约束的PMSM运行性能的分析,确定了电机运行的边界。根据文献回顾,LMC是通过考虑磁芯损耗从PMSM的等效模型得出的。并详细分析了LMC在恒定转矩和恒定功率区域的性能。另外,研究了参数变化的影响。因此,通过考虑全速范围可以改善控制策略。建立了考虑铁心损耗的PMSM Simulink模型,对所提出的控制方法进行了测试。实验在实验室表面安装的PMSM上进行。实验结果与仿真结果一致。 ud

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  • 作者

    Chang Kang;

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  • 年度 2013
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