Research on loss characteristic of soft magnetic composites under nonsinusoidal excitations with DC bias field

Author:

Mei Chao1,Wan Kun1,Zhang Bowei23,Zhu Xu1,Hu Feng1234,Liu Wei123ORCID,Zou Zhongqiu23,Su Hailin123ORCID

Affiliation:

1. School of Materials Science and Engineering and Engineering Research Center of High Performance Copper Alloy Materials and Processing, Ministry of Education, Hefei University of Technology 1 , Hefei 230009, China

2. Anhui Red Magneto-electric Technology Co., Ltd. 2 , Wuhu 241002, China

3. Huaian Engineering Research Center of Soft Magnetic Powder Cores and Devices, Jiangsu Red Magnetic Materials Incorporation 3 , Huaian 211700, China

4. Engineering Technology Research Center of Preparation and Application of Industrial Ceramics of Anhui Province, School of Chemistry and Material Engineering, Chaohu University 4 , Hefei 238000, China

Abstract

Choosing a suitable core loss model and accurately predicting energy loss are crucial in designing magnetic devices with high efficiency based on soft magnetic composites (SMCs). In this work, FeSiAl and FeSi SMCs with a uniform insulating layer were fabricated by a phosphating process. The effects of excitation waveform and DC bias field on core loss have been investigated in depth. The results show that different remagnetization rates of SMC under ideal sinusoidal and square waves result in different core losses at the same frequency and flux density. The improved general Steinmetz equation and the modified Steinmetz equation were shown to be suitable for calculating core loss under square excitation waves without DC bias field. When the DC bias field is applied, the core loss of FeSiAl and FeSi SMCs was found to increase significantly due to the magnetization state gradually approaching saturation. Interestingly, the variation tendency of core loss can be accurately predicted using the waveform coefficient Steinmetz equation under square excitation conditions with a DC bias environment. This work not only provides deep insights into core loss under different excitation waveforms and DC bias fields but also determines the application scope of different core loss models.

Funder

The Anhui Provincial Natural Science Foundation

The Major Science and Technology Innovation 2025 in Ningbo City, China

The Science and Technology Project of State Grid Corporation of China

The Huaian Key Research and Development Plan

Publisher

AIP Publishing

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