退火温度对Fe基非晶薄带磁性能的影响
Effect of Annealing Temperature on Magnetic Properties of Fe-Based Amorphous Ribbons
DOI: 10.12677/MS.2019.94046, PDF,    国家自然科学基金支持
作者: 许校嘉, 陆轩昂, 郭春羽, 范晓珍, 何兴伟, 方允樟:浙江师范大学物理与电子信息工程学院,浙江 金华;方 峥:浙江旅游职业学院,浙江 杭州;杨晓红:金华职业技术学院,浙江 金华
关键词: 应力退火宏观应变微观结构巨磁阻抗磁各向异性Stress Annealing Macro-Strain Microstructure Giant Magneto-Impedance Magnetic Anisotropy
摘要: 本文在不同温度下对Fe基非晶薄带进行应力退火,观测不同温度退火后薄带的宏观应变、微观结构和磁性能。对比分析低温退火和高温退火的实验结果,发现低温退火样品和高温退火样品的微观结构和磁性能有较大差异。低温退火后的样品几乎仍为非晶,而高温退火后的样品为纳米晶薄带,低温退火后样品的宏观应变、最大阻抗比、磁各向异性和最佳驱动频率与其退火温度都具有一定的线性关系。本文的研究结果对工业生产中使用应力退火方法提高Fe基非晶合金的软磁性能具有重要参考价值。
Abstract: In this paper, Fe-based amorphous ribbons were annealed at different temperatures. The mac-ro-strain, microstructure and magnetic properties of the ribbons annealed at different tempera-tures were observed. Comparing and analyzing the experimental results of low temperature an-nealed samples and high temperature annealed samples, it is found that the microstructure and magnetic properties of the samples annealed at low temperature are different from those of the samples annealed at high temperature. The samples annealed at low temperature are almost still amorphous, while the samples annealed at high temperature are nanocrystalline ribbons. The macro-strain, maximum impedance ratio, magnetic anisotropy and optimum driving frequency of the samples after low temperature annealing have a certain linear relationship with the annealing temperature. The results of this paper have important reference value for improving the soft magnetic properties of Fe-based amorphous alloys by stress annealing in industrial production.
文章引用:许校嘉, 陆轩昂, 方峥, 郭春羽, 范晓珍, 何兴伟, 方允樟, 杨晓红. 退火温度对Fe基非晶薄带磁性能的影响[J]. 材料科学, 2019, 9(4): 347-354. https://doi.org/10.12677/MS.2019.94046

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