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Mechanical stress and deformation in the rotors of a high-speed PMSM and IM

机译:高速PMSM和IM转子中的机械应力和变形

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High-speed electric machines are gaining importance in the field of traction drives and aviation due to their high power density. The evaluation of the mechanical stress in the rotor is one crucial part in the design process for this type of machines. The mechanical stress cannot be measured directly. Accordingly, a validation of the calculated mechanical stress is difficult and normally not performed. Instead of the mechanical stress, the deformation at the rotor surface can be measured using a spin test machine with distance sensors. The deformation can then be used to validate the calculation results. In this paper, the mechanical load exerted on an IM rotor for a 60kW/20000 1/min high-speed electric machine and an PMSM rotor for a 75 kW/25000 1/min high-speed electric machine is analysed in detail. The mechanical stress and the deformation are calculated and analysed using a FEM simulation model. Then, a spin test is performed on the two rotors. First, the burst speed is determined by operating two rotor samples above their defined test speed. Then, the deformation is measured at the rotor surface for different operating speeds and the defined test speed. The measurement and the simulation results are compared and discussed. It can be shown that the two designs do not exceed the maximum mechanical stress for the defined operating range. In the deformation measurement of the IM rotor, a plastic deformation up to ε∣M,p∣ = 8 μm and elastic deformation up to ε∣M,e∣ = 22 μm can be seen. In regards to plastics, PMSM rotor expands up to ε_(PMSM,pl) = 5 μm. The maximum elastic deformation of the PMSM rotor is ε_(PMSM,el) = 40μm.The comparison of the calculated and the measured elastic deformation shows good accordance for the two rotor types. Both models are capable of describing the deformation and the state of stress in the rotors. In burst tests, both rotors withstand rotational speeds far above the defined test speed.
机译:由于其高功率密度,高速电机在牵引驱动器和航空领域的重要性。对转子的机械应力的评估是这种类型的设计过程中的一个关键部分。无法直接测量机械应力。因此,难以进行计算的机械应力的验证并且通常不进行。代替机械应力,可以使用具有距离传感器的旋转试验机测量转子表面处的变形。然后可以使用变形来验证计算结果。在本文中,详细分析了用于60kW / 20000 1 / min高速电机的IM转子上的机械负载和75 kW / 25000 1 / min高速电机的PMSM转子。利用FEM仿真模型计算和分析机械应力和变形。然后,在两个转子上执行旋转测试。首先,通过在其定义的测试速度上方操作两个转子样本来确定突发速度。然后,在转子表面处测量变形以进行不同的操作速度和定义的测试速度。比较和讨论测量结果和仿真结果。可以表明,两个设计不超过定义的操作范围的最大机械应力。在IM转子的变形测量​​中,高达εμm的塑性变形,P| =8μm和弹性变形高达εμm,可以看到e =22μm。关于塑料,PMSM转子膨胀至ε_(PMSM,PL)=5μm。 PMSM转子的最大弹性变形是ε_(PMSM,EL)=40μm。计算的弹性变形的比较显示了两种转子类型。两种模型能够描述转子中的变形和应力状态。在突发测试中,两个转子承受远高于定义的测试速度的转速。

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