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Generalization of the classical method for calculating dynamic hysteresis loops in grain-oriented electrical steels

机译:取向电工钢中动态磁滞回线经典计算方法的推广

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摘要

We have studied the ability of two one-dimensional (1-D) time-stepping models, both based on the concept of magnetic viscosity, to reproduce dynamic loops and losses in grain-oriented (GO) electrical steels under arbitrary magnetization regimes. We found that GO steels (0.3 mm thick) can be modeled quite accurately at magnetizing frequencies up to 200 Hz by a thin sheet representation, which is applied to a bulk material. At higher frequencies, acceptable results can be obtained through a finite-difference solver of a 1-D penetration equation whose applicability to GO steels can be explained in terms of domain wall bowing. Because of the inertial effect introduced by the magnetic viscosity, the average error in the loss prediction is reduced from 40% for the conventional classical method to 5% for the methods we studied. We demonstrated the accuracy of the models using two GO steels whose losses and B-H characteristics were measured by computer-controlled Epstein and single-sheet testers.
机译:我们已经研究了两种基于磁性粘度概念的一维(1-D)时间步长模型在任意磁化状态下重现取向(GO)电工钢中动态回路和损耗的能力。我们发现,薄钢板可以将GO钢(0.3毫米厚)在高达200 Hz的磁化频率下非常精确地建模,该模型可以应用于散装材料。在更高的频率下,可以通过一维渗透方程的有限差分求解器获得可接受的结果,该方程可以通过畴壁弯曲来解释其对GO钢的适用性。由于磁粘性引起的惯性效应,损耗预测中的平均误差从传统经典方法的40%降低到我们研究的方法的5%。我们使用两种GO钢证明了模型的准确性,这两种GO钢的损耗和B-H特性由计算机控制的Epstein和单张测试仪测量。

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