在Nd-Fe-B磁体中进行间粒相工程:通过Cu-modified粒边界实现深度Dy扩散
Haihui Wu1, Zhanjia Wang1, Mengying Bian1
1State Key Laboratory of Materials Low-Carbon Recycling, Key Laboratory of Advanced Functional Materials, Ministry of Education of China, College of Materials Science and Engineering, Beijing University of Technology, Beijing 100124, China.
ACS applied materials & interfaces
|November 6, 2025
概括
融化添加的铜显著增强了Nd-Fe-B磁铁中的粒界扩散,增加了强制性和扩散深度. 这种方法成功地改善了用于诸如高温风力轮机等应用的厚磁铁.
科学领域:
- 材料科学 材料科学 材料科学
- 磁力学 磁力学 是一种
- 纳米技术纳米技术
背景情况:
- 颗粒边界扩散 (GBD) 增强了 Nd-Fe-B 磁铁中的强制性.
- 对于厚磁铁来说,实现足够的扩散深度存在挑战.
研究的目的:
- 研究不同铜 (Cu) 添加方法对GBD加工的Nd-Fe-B磁铁的影响.
- 优化微观结构和磁性特性,以提高性能.
主要方法:
- 探索了三种Cu结合策略:表面扩散,谷物边界合和融化添加.
- 使用Dyh3纳米粉作为扩散源来增强GBD.
- 分析了微观结构的变化和磁性性能的改善.
主要成果:
- 融化添加的Cu创造了一个统一的谷物边界网络,扩大了谷物边界,改善了磁隔离.
- 优化的粒度边界增加了Dy扩散深度,从401微米增加到593微米.
- 融化添加的Cu磁铁在Dy GBD后显示了11.76kOe的强制性增加,明显高于没有Cu的磁铁.
结论:
- 铜添加,特别是通过融添加方法,优化了 Nd-Fe-B 磁铁中增强 GBD 的粒度边界.
- 这一策略成功地提高了厚 (10毫米) 磁铁的强制性,同时保持了正方形.
- 这些发现使得GBD能够在厚磁铁中应用,用于像高温风力轮机这样的苛刻应用.
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