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Artificial neural networks applied on double squirrel cage induction motor for an electric vehicle motorisation

机译:人工神经网络在电动汽车机动化双鼠笼感应电动机上的应用

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Double squirrel cage induction motor had proved to be an appropriate solution for most driving loads, which require high starting torque and a low starting current. It presents the future of sustainable automotive industry due to the strategies of control and command of which it can be equipped. This paper presents a speed control comparison between the PI controller and the advanced techniques of control based on the artificial neural networks in order to be applied for an electric vehicle motorization. The results of various simulation tests highlight the robustness properties of the different control strategies based on orientation of the rotor flux.
机译:事实证明,双鼠笼式感应电动机是大多数驱动负载的合适解决方案,这些负载需要高启动转矩和低启动电流。由于可以配置的控制和指挥策略,它代表了可持续汽车工业的未来。本文介绍了PI控制器与基于人工神经网络的先进控制技术之间的速度控制比较,以便将其应用于电动汽车的电动化。各种仿真测试的结果都基于转子磁通的方向突出了不同控制策略的鲁棒性。

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