Loss analysis and calculation of IPMSM with SiC inverter based on field circuit coupling method

Xiao Ju, Yuan Cheng, Mingliang Yang, K. Yao, Ling Ding, S. Cui
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Abstract

In the early design stage of electric drive system, electric machine performance and controller performance usually cannot be considered at the same time. The torque and speed range of traction machine is large, and the harmonic loss caused by current harmonic generated by PWM power supply will not be ignored. The working point of electric vehicle traction machine changes frequently. The current harmonics vary with the working point because the electric machine magnetic field saturation degree is different. In order to solve this problem, a simulation model for fast prediction of harmonic current at each working point is established in this paper. Firstly, the analytical models of SiC device and machine loss are analyzed. Then, based on the experimental prototype parameters, the finite element model of the machine is established, and the dq axes current of different working points are extracted. Based on the field circuit coupling method, a system level simulation analysis model is built, which can realize the current harmonic extraction and loss calculation at different working points. Finally, the effectiveness of the model is verified by selecting the corresponding work points. The results show that the optimized switching frequency can further reduce the system loss. Compared with the traditional Si devices, the high switching frequency of SiC is beneficial to further reduce the harmonic loss.
基于场路耦合法的SiC逆变器IPMSM损耗分析与计算
在电传动系统的早期设计阶段,通常不能同时考虑电机性能和控制器性能。牵引机的转矩和转速范围较大,PWM电源产生的电流谐波造成的谐波损耗不容忽视。电动汽车牵引机的工作点变化频繁。由于电机磁场饱和程度的不同,电流谐波随工作点的不同而变化。为了解决这一问题,本文建立了快速预测各工作点谐波电流的仿真模型。首先,分析了SiC器件和机器损耗的分析模型。然后,基于实验样机参数,建立机床有限元模型,提取不同工作点的dq轴电流;基于场路耦合方法,建立了系统级仿真分析模型,实现了不同工作点的电流谐波提取和损耗计算。最后,通过选择相应的工作点来验证模型的有效性。结果表明,优化后的开关频率能进一步降低系统损耗。与传统的硅器件相比,SiC的高开关频率有利于进一步降低谐波损耗。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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