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激光辅助条件下钕铁硼磁体的商业化规模改性

Commercial-Scale Modification of NdFeB Magnets under Laser-Assisted Conditions.

作者信息

Radwan-Pragłowska Natalia, Radwan-Pragłowska Julia, Łysiak Karol, Galek Tomasz, Janus Łukasz, Bogdał Dariusz

机构信息

Faculty of Electrical and Computer Engineering, Cracow University of Technology, Warszawska 24 St., 31-155 Cracow, Poland.

Faculty of Chemical Engineering and Technology, Cracow University of Technology, Warszawska 24 St., 31-155 Cracow, Poland.

出版信息

Nanomaterials (Basel). 2024 Feb 27;14(5):431. doi: 10.3390/nano14050431.

Abstract

Rare Earth elements (REE) such as NdFeB are commonly used to produce permanent magnets. Thanks to their superior properties, these materials are highly desirable for green energy applications such as wind power generators or electric cars. Currently, REEs are critical for the ongoing development of eco-friendly solutions in different industrial branches. The emerging issue of REE depletion has led to a need for new methods to enable the life cycle elongation, resistance to wear, and external factors improvement of NdFeB magnets. This can be achieved by advanced, nanostructured coating formation of magnet surfaces to increase their functionality and protect from humidity, pressure, temperature, and other factors. The aim of the following research was to develop a new, scalable strategy for the modification of NdFeB magnets using laser-assisted technique, also known as Laser cladding. For this purpose, four different micropowders were used to modify commercial NdFeB samples. The products were investigated for their morphology, structure, chemical composition, and crystallography. Moreover, magnetic flux density was evaluated. Our results showed that laser cladding constitutes a promising strategy for REE-based permanent magnets modification and regeneration and may help to improve durability and resistance of NdFeB components.

摘要

钕铁硼等稀土元素常用于制造永磁体。由于其卓越的性能,这些材料在风力发电机或电动汽车等绿色能源应用中非常受欢迎。目前,稀土元素对于不同工业部门中环保解决方案的持续发展至关重要。稀土元素枯竭这一新兴问题导致需要新的方法来延长钕铁硼磁体的生命周期、提高耐磨性并改善其对外部因素的耐受性。这可以通过在磁体表面形成先进的纳米结构涂层来实现,以增加其功能并抵御湿度、压力、温度和其他因素。以下研究的目的是开发一种新的、可扩展的策略,使用激光辅助技术(也称为激光熔覆)对钕铁硼磁体进行改性。为此,使用了四种不同的微粉来改性商用钕铁硼样品。对产物的形貌、结构、化学成分和晶体学进行了研究。此外,还评估了磁通密度。我们的结果表明,激光熔覆是一种有前景的基于稀土的永磁体改性和再生策略,可能有助于提高钕铁硼部件的耐久性和耐受性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/254b/10934298/055e2032d056/nanomaterials-14-00431-g001.jpg

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