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Article

Eddy Current Mechanism Model for Dynamic Magnetic Field in Ferromagnetic Metal Structures

1
Wuhan Second Ship Design & Research Institute, Wuhan 430205, China
2
Hubei Key Laboratory of Marine Electromagnetic Detection and Control, Wuhan 430205, China
3
Wuhan National High Magnetic Field Center, Huazhong University of Science &Technology, Wuhan 430074, China
*
Author to whom correspondence should be addressed.
Electronics 2024, 13(18), 3772; https://doi.org/10.3390/electronics13183772
Submission received: 22 January 2024 / Revised: 6 May 2024 / Accepted: 16 May 2024 / Published: 23 September 2024
(This article belongs to the Special Issue Pulsed Magnetic Fields and Its Applications)

Abstract

The degaussing process is crucial for ensuring magnetic protection in ships. It involves the application of oscillating and attenuating magnetic fields to eliminate residual magnetism in the ship’s structure. However, this process can lead to the generation of distorted magnetic fields within the ship’s cabin, posing a potential threat to electronic equipment performance. Therefore, it is essential to have a comprehensive understanding of the dynamic magnetic field response in ship structures to develop effective degaussing systems. To address this need, this paper proposes an eddy current model for analyzing the dynamic magnetic field response in ferromagnetic metal structures. This model focuses on the role of eddy currents in shaping the magnetic field response and provides valuable insights into the underlying mechanisms. Using the proposed eddy current model, the effects of key system parameters such as thickness, conductivity, and the length-scale of the ship structure can be analytically investigated. This analysis helps in understanding how these parameters influence the dynamic magnetic field response and aids in the design and optimization of degaussing systems. The effectiveness and applicability of the proposed eddy current model are demonstrated through comprehensive investigations involving two simulation cases of varying complexity. The model accurately predicts the changing trends of the dynamic magnetic field response, as confirmed through finite element simulations. This validation highlights the model’s ability to reproduce simulation results accurately and its potential as a powerful tool for analyzing and optimizing dynamic magnetic field responses. In summary, the proposed eddy current model represents a significant advancement in the field. It provides a valuable theoretical framework for understanding and analyzing the dynamic magnetic field response in ferromagnetic metal structures. By offering insights into the underlying mechanisms and the influence of key parameters, this research contributes to the development of improved degaussing systems and enhances the overall magnetic protection capabilities of ships.
Keywords: magnetic field; eddy current; ferromagnetic; magnetization; equivalent circuit; dynamic magnetic response magnetic field; eddy current; ferromagnetic; magnetization; equivalent circuit; dynamic magnetic response

Share and Cite

MDPI and ACS Style

Zuo, C.; Lai, Z.; Wang, Z.; Wang, J.; Xiao, H.; Yang, W.; Geng, P.; Chen, M. Eddy Current Mechanism Model for Dynamic Magnetic Field in Ferromagnetic Metal Structures. Electronics 2024, 13, 3772. https://doi.org/10.3390/electronics13183772

AMA Style

Zuo C, Lai Z, Wang Z, Wang J, Xiao H, Yang W, Geng P, Chen M. Eddy Current Mechanism Model for Dynamic Magnetic Field in Ferromagnetic Metal Structures. Electronics. 2024; 13(18):3772. https://doi.org/10.3390/electronics13183772

Chicago/Turabian Style

Zuo, Chao, Zhipeng Lai, Zuoshuai Wang, Jianxun Wang, Hanchen Xiao, Wentie Yang, Pan Geng, and Meng Chen. 2024. "Eddy Current Mechanism Model for Dynamic Magnetic Field in Ferromagnetic Metal Structures" Electronics 13, no. 18: 3772. https://doi.org/10.3390/electronics13183772

APA Style

Zuo, C., Lai, Z., Wang, Z., Wang, J., Xiao, H., Yang, W., Geng, P., & Chen, M. (2024). Eddy Current Mechanism Model for Dynamic Magnetic Field in Ferromagnetic Metal Structures. Electronics, 13(18), 3772. https://doi.org/10.3390/electronics13183772

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