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Computationally Efficient 3-D Finite-Element-Based Dynamic Thermal Models of Electric Machines

机译:计算有效的基于3D有限元的电机动态热模型

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摘要

The performance of an electric machine is significantly constrained by temperature. Hence, in order to determine the torque and power capabilities of an electric machine under real-time operating conditions, dynamic knowledge of internal temperatures is required and needs to be estimated in a computationally efficient manner. In this paper, we present a technique for developing computationally efficient thermal models for electric machines that can be used for real-time thermal observers and electrified vehicle powertrain-level simulation and optimization. The technique is based on simulating eigenmodes of the thermal dynamics as determined by 3-D finite-element analysis (FEA). The order of the FE model is then dramatically reduced. The full-order system is decomposed into two parts by using the orthogonality property of the thermal eigenmodes, and only eigenmodes, which are significantly excited, are included in the dynamic model; other eigenmodes are treated as static modes. A large 3-D FEA model can be thus reduced to a small reduced-order model without the necessity of calculating all the eigenmodes. Furthermore, the process of selecting the significantly excited eigenmodes is automatic based on a proposed normalized “extent of excitation” calculation. By using the proposed techniques, the computation time of the model can be dramatically reduced compared with the full-order model while maintaining sufficient accuracy. Experimental results show good agreement between simulation results and measured data.
机译:电机的性能受到温度的极大限制。因此,为了确定电机在实时运行条件下的转矩和功率能力,需要内部温度的动态知识并且需要以计算上有效的方式进行估计。在本文中,我们提出了一种开发用于电机的高效计算热模型的技术,该模型可用于实时热观测器以及电动车辆动力总成水平的仿真和优化。该技术基于模拟由3-D有限元分析(FEA)确定的热动力学的本征模。然后,FE模型的阶数大大降低。利用热本征模的正交性将全阶系统分解为两部分,动态模型中仅包含显着激发的本征模。其他本征模式被视为静态模式。因此,可以将大型3-D FEA模型简化为小型降阶模型,而无需计算所有本征模。此外,基于提议的归一化“激发范围”计算,选择显着激发本征模式的过程是自动的。通过使用提出的技术,与全阶模型相比,模型的计算时间可以大大减少,同时保持足够的精度。实验结果表明,仿真结果与实测数据吻合良好。

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