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Electrical propulsion system design of Chevrolet Bolt battery electric vehicle

机译:雪佛兰螺栓电池电动汽车的电气推进系统设计

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A permanent magnet synchronous motor (PMSM) motor is used to design the propulsion system of GM's Chevrolet Bolt battery electric vehicle (BEV). Magnets are buried inside the rotor in two layer `V' arrangement. The Chevrolet Bolt BEV electric machine rotor design optimizes the magnet placement between the adjacent poles asymmetrically to lower torque ripple and radial force. Similar to Chevrolet Spark BEV electric motor, a pair of small slots are stamped in each rotor pole near the rotor outer surface to lower torque ripple and radial force. Rotor design optimizes the placement of these slots at different locations in adjacent poles providing further reduction in torque ripple and radial force. As a result of all these design features, the Chevrolet Bolt BEV electric motor is able to meet the GM stringent noise and vibration requirements without implementing rotor skew, which (rotor skew) lowers motor performance and adds complexity to the rotor manufacturing and hence is undesirable. A bar-wound stator construction, similar to Chevrolet Spark battery electric vehicle, is implemented in Chevrolet Bolt BEV. Bar-wound construction, which GM has adopted for most of its electric and hybrid vehicle motor construction, is known to provide high slot fill, short end-turn length, improved thermal performance, and improved vehicle efficiency especially at low to medium speed ranges. In order to lower the winding ac effect at higher speeds, the Chevrolet Bolt BEV motor implements six conductors per slot design while four conductors per slot design was used in Chevrolet Spark motor design. As a result, individual conductor size is smaller in new design resulting in reduced winding AC effects and improved joule loss at high speed operations. Winding layout design in Chevrolet Bolt BEV motor is optimized to minimize voltage between conductors within the slot. This has allowed to eliminate the slot insulation between conductors, further increasing the slot fill and reducing material and manufacturing costs. Stator design of Chevrolet Bolt BEV adopts a special feature, introduced in Gen2 Chevrolet Volt, the stator slot opening size and placement under each pole are optimized to lower torque ripple and radial force. This feature supplements the torque ripple and radial force reduction features introduced in the rotor design as described above. The high performing electric machine is coupled with a high performing control algorithm to deliver maximum system efficiency and performance. A six-step mode of inverter control is implemented to maximize the voltage utilization. As the speed is increased control automatically transitions to six-step mode from space vector PWM (SVPWM) seamlessly. Torque response dynamics at six-step control is reduced, as expected, from SVPWM mode of control. However, the torque control dynamics with six-step control is able to meet the torque response requirements of the vehicle. Control is stable and robust even with very fast vehicle acceleration.
机译:永磁同步电动机(PMSM)电动机用于设计通用汽车的雪佛兰螺栓电池电动汽车(BEV)的推进系统。磁体以两层“ V”形埋入转子内部。雪佛兰Bolt BEV电机转子设计可优化非对称地放置在相邻磁极之间的磁体,以降低转矩波动和径向力。与雪佛兰Spark BEV电动机类似,在每个转子磁极中靠近转子外表面的位置印有一对小槽,以降低转矩波动和径向力。转子设计优化了这些槽在相邻极中不同位置的放置,从而进一步减小了转矩波动和径向力。由于所有这些设计特征,雪佛兰Bolt BEV电动机能够满足GM严格的噪声和振动要求,而无需实现转子偏斜,这会降低电动机性能并增加转子制造的复杂性,因此不受欢迎。雪佛兰Bolt BEV采用了类似于雪佛兰Spark电池电动汽车的绕线定子结构。众所周知,通用汽车公司在其大多数电动和混合动力汽车电机结构中都采用了棒绕结构,特别是在中低速范围内,它可提供高的槽缝填充,较短的端匝长度,改善的热性能和改善的车辆效率。为了降低较高速度下的绕组交流电影响,雪佛兰Bolt BEV电机在每个插槽设计中使用六个导体,而在雪佛兰Spark电机设计中每个插槽设计使用四个导体。结果,在新设计中,单个导体的尺寸更小,从而降低了绕组交流效应,并改善了高速运行时的焦耳损耗。雪佛兰螺栓BEV电机的绕组布局设计经过优化,可最大程度地减少槽内导体之间的电压。这样就消除了导体之间的缝隙绝缘,进一步增加了缝隙填充并降低了材料和制造成本。雪佛兰螺栓BEV的定子设计具有一项特殊功能,即Gen2雪佛兰Volt中引入的定子槽开口尺寸和每个极点下的位置均经过优化,以降低转矩波动和径向力。该功能补充了如上所述的转子设计中引入的转矩脉动和径向力减小功能。高性能电机与高性能控制算法结合在一起,可提供最大的系统效率和性能。实现了六步模式的逆变器控制,以最大程度地提高电压利用率。随着速度的增加,控制会自动无缝地从空间矢量PWM(SVPWM)转换为六步模式。如预期的那样,SVPWM控制模式降低了六步控制时的转矩响应动态。但是,具有六步控制的扭矩控制动力学特性能够满足车辆的扭矩响应要求。即使车辆加速非常快,控制也稳定可靠。

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