Electromagnetic Properties of Soft Magnetic Composites and Electrical Steels at High Frequencies Considering Material Manufacturing Techniques

D. Gumbleton-Wood, G. Atkinson, L. Sjöberg
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引用次数: 2

Abstract

A comprehensive magnetic comparison study is conducted on ring samples comprised of Soft Magnetic Composite (SMC) and electrical steel materials. The testing is performed under DC and AC conditions in an effort to characterize the materials magnetic compatibility for use in the increasingly prevalent research area that is high-speed electrical machines. DC tests show the improved magnetization characteristics for electrical steels emerging from their smooth, unimpeded microstructure. The measured DC characteristics and data obtained from simulation software can be vastly different. The magnitude of which is shown to be over 100 %. High-frequency AC loss measurements find that SMC and particularly thin electrical steel materials maintain a superior performance over thicker laminations at frequencies commonly encountered in high-speed machines. Hysteresis loop measurements highlight the extent of deterioration due to mechanical cutting of each material and a discussion on the possible underlying causes based on material properties is given. Cross-over frequencies of SMC grades over laminations are found to be as low as 68 Hz. AC loss results are compared with Finite Element Analysis (FEA) simulations and highlight the tendency for machine designers to employ a build factor when calculating iron loss during the design stages of a machine. A build factor is simply an error between simulated and measured loss. Errors are shown to be as high as 70 % for lamination materials and 2 % for SMC. FEA clearly does not account for the degradation of materials during cutting. This problem can be addressed with the proposal of new loss coefficients chosen according to the cutting technique and should also be a function of frequency and induction. This is a potential research area for future work.
考虑材料制造技术的软磁复合材料和电工钢的高频电磁性能
对由软磁复合材料(SMC)和电工钢材料组成的环形样品进行了全面的磁性对比研究。测试在直流和交流条件下进行,以表征材料在高速电机日益流行的研究领域中的磁性兼容性。直流试验表明,由于其光滑、畅通的微观结构,电工钢的磁化特性得到了改善。测量的直流特性和从仿真软件获得的数据可能有很大的不同。它的大小超过了100%高频交流损耗测量发现,在高速机器中常见的频率下,SMC和特别薄的电工钢材料保持比厚层材料优越的性能。磁滞回线测量强调了由于每种材料的机械切削而导致的劣化程度,并根据材料特性讨论了可能的潜在原因。SMC等级在薄片上的交叉频率低至68赫兹。交流损耗结果与有限元分析(FEA)模拟进行了比较,并强调了机器设计师在机器设计阶段计算铁损耗时使用构建因子的趋势。构建因子只是模拟损耗和测量损耗之间的误差。结果表明,层压材料的误差高达70%,SMC的误差为2%。FEA显然不能解释材料在切削过程中的退化。这个问题可以通过根据切削工艺选择新的损耗系数来解决,损耗系数也应该是频率和感应的函数。这是未来工作的一个潜在研究领域。
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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