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STABILITY OF AN ELECTRIC VEHICLE WITH PERMANENT-MAGNET IN-WHEEL MOTORS DURING ELECTRICAL FAULTS

机译:电气故障期间永久磁铁车载电动机稳定性

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This paper presents an analysis of the stability of an electric vehicle equipped with in-wheel motors of permanent-magnet type during a class of electrical faults. Due to the constant excitation from the permanent magnets, the output torque from a faulted wheel cannot easily be removed if an inverter shuts down, which directly affects the vehicle stability. In this paper, the impact of an electrical fault during two driving scenarios is investigated by simulations; using parameters from a 30 kW in-wheel motor and experimentally obtained tire data. The driving scenarios are: high-speed straight-ahead driving at low μ conditions and high-speed curve driving at nominal μ conditions. It is shown that the electrical fault risks to seriously degrade the vehicle stability if the correct counteraction is not taken quickly. Furthermore, it is demonstrated that vehicle stability during an electrical fault can be maintained with only minor lateral displacements when a closed-loop path controller and a simple method to allocate the individual tire forces are used. This inherent capacity to handle an important class of electrical faults is attractive; especially since no additional fault-handling strategy or hardware is needed.
机译:本文介绍了一类电气故障期间配备有永磁型内部电动机的电动车辆的稳定性的分析。由于永磁体的恒定激发,如果逆变器关闭,则不能容易地移除来自故障轮的输出扭矩,这直接影响车辆稳定性。在本文中,通过模拟研究了两种驾驶场景期间电故障的影响;使用来自30 kW轮内电机的参数并通过实验获得的轮胎数据。驱动场景是:在低μ条件下高速直线驱动和标称μ条件下的高速曲线。结果表明,如果没有快速采取正确的抗衡,电气故障风险会严重降低车辆稳定性。此外,证明在使用闭环路径控制器和分配各个轮胎力的简单方法时,可以仅在电故障期间的车辆稳定性。这种处理重要类电故障的固有能力是有吸引力的;特别是因为不需要额外的故障处理策略或硬件。

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