轴向磁通电动机可变气隙概念的试验与仿真

Dian Liu, D. Hari, C. Vagg, L. Ash, S. Akehurst, C. Brace
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引用次数: 3

摘要

减少车辆燃料消耗和二氧化碳排放最有希望的方法之一是在车辆动力系统中使用电动机来辅助内燃机,或自行推动车辆。本文讨论了一种通过动态改变转子和定子之间的气隙来提高轴向磁通电机性能和效率的新方法。一系列实验揭示了可变气隙(VAG)的某些关键特性如何在各种气隙设置中发挥作用。结果表明,当气隙从正常的1.2mm增加到18mm时,电机的峰值转矩从72Nm减小到16Nm,电机的最高转速从5500rev/min增加到7000rev/min以上。结果表明,随着气隙的增大,高效区向高速区移动。此外,在增加气隙,电机有较高的扭矩输出在高速。这种行为在固定的几何形状设计中是有限的,但是软件控制气隙设计的实现允许电机特性变化以适应当前的操作条件。为了证明这一好处,实验数据被用来建立一个模型的电机与动态可变气隙的概念纳入其中。然后,将该模型与固定比例动力系统结合使用,并结合简单的车辆模型,在NEDC驱动循环中进行测试,以预测与类似技术规格的标准电动机相比,它将实现的节省。该模型预测,采用VAG设计后,整体电池能耗将降低0.72%。此外,与标准电机相比,VAG概念车有可能降低变速箱的复杂性,并在更高的速度下提供更好的驾驶性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Test and Simulation of Variable Air Gap Concept on Axial Flux Electric Motor
One of the most promising methods to reduce vehicle fuel consumption and CO2 emissions is by using an electric motor in the vehicle powertrain system to assist the internal combustion engine, or propel vehicle by itself. This paper discusses a new potential method to improve axial flux motor performance and efficiency, by dynamically changing the air gap between the rotor and the stator. A series of experiments have provided insight into how certain key characteristics of the variable air gap (VAG) across a wide range of air gap settings. The results show that, on increasing the air gap from the normal 1.2mm to as much as 18mm, the peak torque reduces from 72Nm to 16Nm while the maximum speed of the motor increases from 5500rev/min to over 7000rev/min. It was seen that the high efficiency region moves towards the higher speed region as the air gap increases. Also, on increasing the air gap, the motor had a higher torque output at high speed. This behaviour is of limited benefit in a fixed geometry design, but the implementation of a software controlled air gap design allows the motor characteristics to be varied to suit the prevailing operating conditions. To demonstrate this benefit, the experimental data were used to build a model of the motor with a dynamically variable air gap concept incorporated into it. This model was then used with a fixed ratio powertrain, combined with a simple vehicle model and exercised over the NEDC drive cycle to predict the savings it would achieve when compared to a standard electric motor of similar technical specifications. The model predicts the overall battery energy usage reduced by 0.72% when using a VAG design. In addition, the VAG concept has the potential to reduce gearbox complexity and provide better drivability at higher speeds over the standard motor.
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