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基于低噪声材料、磁化控制和有源补偿的磁屏蔽增强:综述

Enhancement of Magnetic Shielding Based on Low-Noise Materials, Magnetization Control, and Active Compensation: A Review.

作者信息

Liu Yijin, Yang Jianzhi, Cao Fuzhi, Zhang Xu, Zheng Shiqiang

机构信息

Key Laboratory of Ultra-Weak Magnetic Field Measurement Technology, Ministry of Education, School of Instrumentation and Optoelectronic Engineering, Beihang University, Beijing 100191, China.

Zhejiang Provincial Key Laboratory of Ultra-Weak Magnetic-Field Space and Applied Technology, Hangzhou Innovation Institute, Beihang University, Hangzhou 310051, China.

出版信息

Materials (Basel). 2024 Nov 8;17(22):5469. doi: 10.3390/ma17225469.

Abstract

Magnetic-shielding technologies play a crucial role in the field of ultra-sensitive physical measurement, medical imaging, quantum sensing, etc. With the increasing demand for the accuracy of magnetic measurement, the performance requirements of magnetic-shielding devices are also higher, such as the extremely weak magnetic field, gradient, and low-frequency noise. However, the conventional method to improve the shielding performance by adding layers of materials is restricted by complex construction and inherent materials noise. This paper provides a comprehensive review about the enhancement of magnetic shielding in three aspects, including low-noise materials, magnetization control, and active compensation. The generation theorem and theoretical calculation of materials magnetic noise is summarized first, focusing on the development of spinel ferrites, amorphous, and nanocrystalline. Next, the principles and applications of two magnetization control methods, degaussing and magnetic shaking, are introduced. In the review of the active magnetic compensation system, the forward and inverse design methods of coil and the calculation method of the coupling effect under the ferromagnetic boundary of magnetic shield are explained in detail, and their applications, especially in magnetocardiography (MCG) and magnetoencephalogram (MEG), are also mainly described. In conclusion, the unresolved challenges of different enhancement methods in materials preparation, optimization of practical implementation, and future applications are proposed, which provide comprehensive and instructive references for corresponding research.

摘要

磁屏蔽技术在超灵敏物理测量、医学成像、量子传感等领域发挥着关键作用。随着对磁测量精度的需求不断增加,对磁屏蔽装置的性能要求也更高,例如极弱磁场、梯度和低频噪声。然而,通过增加材料层数来提高屏蔽性能的传统方法受到复杂结构和固有材料噪声的限制。本文从低噪声材料、磁化控制和有源补偿三个方面对磁屏蔽增强进行了全面综述。首先总结了材料磁噪声的产生定理和理论计算,重点介绍了尖晶石铁氧体、非晶和纳米晶的发展。接下来,介绍了消磁和磁振两种磁化控制方法的原理及应用。在有源磁补偿系统综述中,详细解释了磁屏蔽铁磁边界下线圈的正反设计方法和耦合效应的计算方法,并主要描述了它们的应用,特别是在磁心动图(MCG)和脑磁图(MEG)中的应用。最后,提出了不同增强方法在材料制备、实际应用优化和未来应用中尚未解决的挑战,为相关研究提供了全面且具有指导意义的参考。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fd2f/11595978/6c2a2c9f6772/materials-17-05469-g001.jpg

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