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Development and series application of a vehicle drivetrain observer used in hybrid and electric vehicles

机译:用于混合动力和电动汽车的车辆传动系统观察器的开发和系列应用

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This paper introduces the development and calibration process of a vehicle drivetrain observer used in hybrid and electric vehicles for active damping control (ADC) and for the improvement of the electric machine's rotor angle signal quality. This approach starts with creating an overall vehicle model that includes the electric machine, the transmission, side shafts, the tires and the vehicle body. For control engineering purposes, that multi-order-model is then reduced into a two-mass-oscillator which can be easily described in state-space form. Using this reduced drivetrain model and applying a Luenberger observer approach, not only the signal quality of both the instrumented rotor angle and the speed of the electric machine can be improved considerably but also the oscillation dynamics of this vehicle drivetrain can be estimated. If not compensated during vehicle operation, drivetrain oscillations might lead to increased drivetrain wear, NVH issues and limited ride comfort; therefore, the oscillation speed is very important in computing an active damping torque that is to compensate drivetrain oscillations. Calibration of the vehicle drivetrain observer is done using specific vehicle test data that are fed into a standalone calibration tool identifying the parameters of the vehicle drivetrain as well as the Luenberger feedback vector. Based on these data, a proper active damping control application is set-up and verified in various vehicle tests and to lead to the calibration finally to the application in several hybrid and electric vehicle series projects (e.g. Peugeot 3008 HYbrid4).
机译:本文介绍了混合动力和电动汽车中用于主动阻尼控制(ADC)以及改善电机转子角信号质量的汽车传动系统观察器的开发和校准过程。该方法从创建一个整体的车辆模型开始,该模型包括电机,变速器,侧轴,轮胎和车身。出于控制工程的目的,该多阶模型随后被简化为两个质量振子,可以以状态空间形式轻松地对其进行描述。使用此简化的传动系统模型并应用Luenberger观测器方法,不仅可以显着改善仪表转子角的信号质量和电机速度,而且可以估算该车辆传动系统的振动动力学。如果在车辆操作过程中未进行补偿,则传动系统的振动可能会导致传动系统磨损增加,NVH问题和有限的乘坐舒适性;因此,在计算主动阻尼转矩以补偿传动系统振荡时,振荡速度非常重要。使用特定的车辆测试数据对车辆动力传动系统观察者进行校准,将其输入到独立的校准工具中,以识别车辆动力传动系统的参数以及Luenberger反馈矢量。根据这些数据,可以在各种车辆测试中建立并验证适当的主动阻尼控制应用程序,并最终将其校准到多个混合动力和电动汽车系列项目(例如标致3008 HYbrid4)中。

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