中空玻璃熔块包覆铁基非晶合金粉末高频磁性能的研究

IF 2.1 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
Seung-Wook Kim, Tae-Kyung Lee, Ye-Ji Son, Hyo-Min Kim, Dae-Yong Jeong
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引用次数: 0

摘要

非晶金属粉末以其高饱和磁化强度,低矫顽力(Hc)和减少涡流损耗而闻名,在高性能磁性器件中具有很大的前景。然而,在较高的频率下,主要由于涡流导致的芯损耗增加,会损害其效率,导致显著的散热。本研究通过研究低软化温度(Ts)玻璃熔块作为绝缘涂层来提高Fe92.3Si3.5B3.0C0.7P0.5 (wt%)非晶合金粉末的电磁性能来解决这一挑战。这项研究的实际意义是重大的,因为它提供了一个潜在的解决方案,在更高的频率的核心损耗问题。包覆粉末表现出优异的性能,磁芯损耗最小,小于321 mW/cm³(1 MHz时Bm = 0.2 T),在保持适当磁导率的情况下,粉末电阻率高达1.81 × 109 Ω∙cm。计算和实验结果表明,调整涂层厚度和保证涂层均匀可使颗粒间和颗粒内涡流损失最小。这种优化显著降低了铁芯损耗,提高了材料的高频性能。该研究强调了低Ts玻璃熔块在平衡电阻率、磁性能和减少磁芯损耗方面的关键作用,为开发用于先进磁性应用的高效非晶合金粉末提供了切实可行的途径,包括紧凑型电感器和环保技术中的节能设备。图形抽象
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Enhancing High-Frequency Magnetic Performance of Fe-Based Amorphous Alloy Powders Coated with Insulating Glass Frits

Enhancing High-Frequency Magnetic Performance of Fe-Based Amorphous Alloy Powders Coated with Insulating Glass Frits

Amorphous metal powders, known for their high saturation magnetization, low coercivity (Hc), and reduced eddy current loss, hold great promise for high-performance magnetic devices. However, elevated core losses at higher frequencies—primarily due to eddy currents—impair their efficiency, leading to significant heat dissipation. This study addresses this challenge by investigating the application of low-softening temperature (Ts) glass frits as an insulating coating to enhance the electrical and magnetic properties of Fe92.3Si3.5B3.0C0.7P0.5 (wt%) amorphous alloy powders. The practical implications of this research are significant, as it offers a potential solution to the problem of core losses at higher frequencies. The coated powders exhibited superior performance, with the lowest core loss measured at less than 321 mW/cm³ (Bm = 0.2 T at 1 MHz) and a high powder resistivity of up to 1.81 × 109 Ω∙cm while maintaining appropriate permeability. Calculation and experimental results demonstrated that adjusting the coating thickness and ensuring a uniform layer minimized inter-particle and intra-particle eddy current losses. This optimization led to a significant reduction in core loss, enhancing the material’s high-frequency performance. The study emphasizes the critical role of low Ts glass frits in balancing resistivity, magnetic properties, and core loss reduction, offering a practical pathway for developing efficient amorphous alloy powders for advanced magnetic applications, including compact inductors and energy-efficient devices in eco-friendly technologies.

Graphical Abstract

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来源期刊
Electronic Materials Letters
Electronic Materials Letters 工程技术-材料科学:综合
CiteScore
4.70
自引率
20.80%
发文量
52
审稿时长
2.3 months
期刊介绍: Electronic Materials Letters is an official journal of the Korean Institute of Metals and Materials. It is a peer-reviewed international journal publishing print and online version. It covers all disciplines of research and technology in electronic materials. Emphasis is placed on science, engineering and applications of advanced materials, including electronic, magnetic, optical, organic, electrochemical, mechanical, and nanoscale materials. The aspects of synthesis and processing include thin films, nanostructures, self assembly, and bulk, all related to thermodynamics, kinetics and/or modeling.
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