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System power loss optimization of electric vehicle driven by front and rear induction motors

机译:前后电动机驱动的电动车辆系统功率损耗优化

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Power loss optimization aiming at the high-efficiency drive of front-and-rear-induction-motor-drive electric vehicle (FRIMDEV) as an effective way to improve energy efficiency and extend driving range is of high importance. Different from the traditional look-up table method of motor efficiency, power loss optimization of the dual- motor system based on the loss mechanism of induction motor (IM) is proposed. First of all, based on the power loss characteristic of FRIMDEV from battery to wheels, the torque distribution optimization model aiming at the minimum system power loss is put forward. Secondly, referring to d-q axis equivalent model of IM, the power loss functions of the dual-IM system are modeled. Then, the optimal torque distribution coefficient (beta (o)) between the two IMs is derived, and the theoretical switching condition (T (sw)) between the single- and dual-motor-drive mode (SMDM and DMDM) is confirmed. Finally, a dual-motor test platform is developed. The derived torque distribution strategy is verified. The influence of motor temperature on beta (o) and T (sw) are tested, and the correction models based on temperature difference are proposed. Based on the system power loss analysis, it can be confirmed that, under low load conditions, the SMDM takes priority over the DMDM, and the controller of the idling motor should be shut down to avoid the additional excitation loss. While under middle to high load conditions, even torque distribution (beta (o) = 0.5) is preferred if the temperature difference between the two IMs is small; otherwise, beta (o) should be corrected based on dual-motor temperatures. The theoretical T (sw) derived without dealing with temperature difference is a function only of motor speed, while temperature difference correction of it should be conducted in actual operations based on motor resistance changing with temperature.
机译:功率损耗优化瞄准前后电动电动机电动车(FRIMDEV)的高效驱动,作为提高能量效率的有效方法,并且延伸驾驶范围高。不同于传统的电机效率查找方法,提出了基于感应电机(IM)损耗机构的双电机系统的功率损耗优化。首先,基于从电池到车轮的Frimdev的功率损耗特性,提出了旨在最小系统功率损耗的扭矩分布优化模型。其次,参考IM的D-Q轴等效模型,模拟了双IM系统的功率丢失功能。然后,推导出两个IMS之间的最佳扭矩分布系数(Beta(O)),并且确认了单个和双电动机驱动模式(SMDM和DMDM)之间的理论开关条件(T(SW))。最后,开发了双电机测试平台。验证了衍生的扭矩分布策略。测试电机温度对β(O)和T(SW)的影响,提出了基于温差的校正模型。基于系统功率损耗分析,可以确认,在低负载条件下,SMDM优先于DMDM,并且应关闭怠速电机的控制器以避免额外的激励丢失。在中间到高负载条件下,如果两个IMS之间的温差差异很小,则优选扭矩分布(β(o)= 0.5);否则,应根据双电机温度校正Beta(O)。衍生的理论T(SW)而不处理温度差异是仅通过电动机速度的函数,而应该在基于温度变化的电机阻力的实际操作中进行温差校正。

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