Guo Youguang, Liu Lin, Yin Wenliang, Lu Haiyan, Lei Gang, Zhu Jianguo
Faculty of Engineering and Information Technology, University of Technology Sydney, Ultimo, NSW 2007, Australia.
School of Electrical and Information Engineering, The University of Sydney, Camperdown, NSW 2006, Australia.
Nanomaterials (Basel). 2023 Jun 28;13(13):1963. doi: 10.3390/nano13131963.
With the increasing demand for smaller, lighter, and more affordable electromagnetic devices, there is a growing trend toward developing high-power-density transformers and electrical machines. While increasing the operating frequency is a straightforward approach to achieving high power density, it can lead to significant power loss within a limited volume, resulting in excessive temperature rise and device degradation. Therefore, it is crucial to design high-power-density electromagnetic devices that exhibit low power loss and efficient thermal dissipation to address these challenges. Advanced techniques, such as the utilization of novel and advanced electromagnetic materials, hold great promise for overcoming these issues. Specifically, nanocrystalline and amorphous magnetic materials have emerged as highly effective solutions for reducing power loss and increasing efficiency in electromagnetic devices. This paper aims to provide an overview of the application of nanocrystalline and amorphous magnetic materials in transformers and electrical machines, along with key technologies and the major challenges involved.
随着对更小、更轻且更经济实惠的电磁设备需求不断增加,开发高功率密度变压器和电机的趋势日益明显。虽然提高工作频率是实现高功率密度的直接方法,但这可能会在有限体积内导致显著的功率损耗,从而导致温度过度升高和设备性能下降。因此,设计具有低功率损耗和高效散热性能的高功率密度电磁设备对于应对这些挑战至关重要。诸如利用新型和先进电磁材料等先进技术,有望克服这些问题。具体而言,纳米晶和非晶磁性材料已成为降低电磁设备功率损耗和提高效率的高效解决方案。本文旨在概述纳米晶和非晶磁性材料在变压器和电机中的应用,以及相关关键技术和主要挑战。