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Asymmetric dual winding three-phase PMSM for fault tolerance of overheat in electric braking system of autonomous vehicle

机译:非对称双绕组三相永磁同步电动机,用于自动驾驶汽车电制动系统中的过热故障容错

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摘要

In this paper, an asymmetric dual winding three-phase permanent magnet synchronous motor (PMSM) is proposed for enhancing the fault-tolerance of overheat in autonomous vehicles. A conventional dual winding three-phase motor is divided into two three-phase windings, one for the master part and one for the slave part. It is advantageous to have a redundant system by combining two electric control units (ECU) with one motor instead of two motors. However, when the motor is burned out due to excessive overload driving beyond the motor design value, there is a possibility that no operation can be performed even though there are two ECUs. The proposed dual winding three-phase asymmetric motors are designed differently in the master and slave windings so that the simultaneous burnout of master and slave can be avoided. The coil temperature rise according to the asymmetrical winding design of the motor is estimated by the thermal equivalent circuit method. Also, optimal design for proposed model is conducted using the radial basis function (RBF) and the experimental design method. The optimized proposed asymmetric dual winding three-phase PMSM is applied to the design of motor for electric brake systems of an autonomous vehicle and is verified its usefulness.
机译:为了提高自动驾驶汽车过热的容错能力,提出了一种非对称双绕组三相永磁同步电动机(PMSM)。常规的双绕组三相电动机被分为两个三相绕组,一个为主机部分,一个为从机部分。通过将两个电气控制单元(ECU)与一个电动机(而不是两个电动机)组合在一起来构成冗余系统是有利的。但是,当由于过度的过载驱动而使电动机烧坏而超出电动机的设计值时,即使有两个ECU,也有可能无法执行操作。提出的双绕组三相不对称电动机在主绕组和从绕组中的设计有所不同,因此可以避免主绕组和从绕组同时烧毁。根据电动机的非对称绕组设计,通过热等效电路方法估算线圈的温度升高。此外,使用径向基函数(RBF)和实验设计方法对提出的模型进行了最佳设计。提出的优化的非对称双绕组三相永磁同步电动机在自动驾驶汽车电制动系统电机设计中得到了验证。

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