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Magnetic and Electrical Characteristics of Cobalt-Based Amorphous Materials and Comparison to a Permalloy Type Polycrystalline Material

机译:钴基非晶材料的磁电特性及其与坡莫合金型多晶材料的比较

摘要

Magnetic component designers are always looking for improved soft magnetic core materials to increase the efficiency, temperature rating and power density of transformers, motors, generators and alternators, and energy density of inductors. In this paper, we report on the experimental investigation of commercially available cobalt-based amorphous alloys which, in their processing, were subjected to two different types of magnetic field anneals: A longitudinal magnetic field anneal or a transverse magnetic field anneal. The longitudinal field annealed material investigated was Metglas 2714A. The electrical and magnetic characteristics of this material were investigated over the frequency range of 1 to 200 kHz and temperature range of 23 to 150 C for both sine and square wave voltage excitation. The specific core loss was lower for the square than the sine wave voltage excitation for the same maximum flux density, frequency and temperature. The transverse magnetic field annealed core materials include Metglas 2714AF and Vacuumschmelze 6025F. These two materials were experimentally characterized over the frequency range of 10 to 200 kHz for sine wave voltage excitation and 23 C only. A comparison of the 2174A to 2714AF found that 2714AF always had lower specific core loss than 2714A for any given magnetic flux density and frequency and the ratio of specific core loss of 2714A to 2714AF was dependent on both magnetic flux density and frequency. A comparison was also made of the 2714A, 2714AF, and 6025F materials to two different tape thicknesses of the polycrystalline Supermalloy material and the results show that 2714AF and 6025F have the lowest specific core loss at 100 kHz over the magnetic flux density range of 0.1 to 0.4 Tesla.
机译:磁性元件设计人员一直在寻找改良的软磁芯材料,以提高变压器,电动机,发电机和交流发电机的效率,额定温度和功率密度,以及电感器的能量密度。在本文中,我们报告了对市售钴基非晶态合金的实验研究,该钴基非晶态合金在加工过程中经历了两种不同类型的磁场退火:纵向磁场退火或横向磁场退火。研究的纵向场退火材料是Metglas 2714A。在正弦波和方波电压激励下,在1至200 kHz的频率范围和23至150 C的温度范围内研究了这种材料的电和磁特性。在相同的最大磁通密度,频率和温度下,平方的比磁芯损耗要低于正弦波电压激励。横向磁场退火的芯材包括Metglas 2714AF和Vacuumschmelze 6025F。在正弦波电压激励和仅23 C的10至200 kHz频率范围内,对这两种材料进行了实验表征。对2174A和2714AF的比较发现,对于任何给定的磁通密度和频率,2714AF始终比2714A具有更低的比磁芯损耗,并且2714A和2714AF的比磁芯损耗比取决于磁通密度和频率。还对2714A,2714AF和6025F材料与两种不同带厚度的多晶超级合金材料进行了比较,结果表明2714AF和6025F在100 kHz的磁通量密度范围为0.1至200时具有最低的比铁心损耗。 0.4特斯拉。

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