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用于电磁屏蔽的环氧/羰基铁粉吸波泡沫材料的制备、结构与性能

Preparation, Structure and Properties of Epoxy/Carbonyl Iron Powder Wave-Absorbing Foam for Electromagnetic Shielding.

作者信息

Liu Xiaoli, Huang Hao, Lu Haijun

机构信息

Composite Technology Center, AVIC Beijing Aeronautical Manufacturing Technology Research Institute, Beijing 101300, China.

National Key Laboratory of Advanced Composites, AECC Beijing Institute of Aeronautical Materials, Beijing 100095, China.

出版信息

Polymers (Basel). 2024 Mar 4;16(5):698. doi: 10.3390/polym16050698.

Abstract

The application of absorbing materials for electromagnetic shielding is becoming extensive, and the use of absorbents is one of the most important points of preparing absorbing foam materials. In this work, epoxy resin was used as the matrix and carbonyl iron powder (CIP) was used as the absorbent, and the structural absorbing foam materials were prepared by the ball mill dispersion method. Scanning electron microscopy showed that the CIP was evenly dispersed in the resin matrix. The foam structures formed at pre-polymerization times of 10 min, 30 min and 50 min were analyzed, and it was found that the cell diameter decreased from 0.47 mm to 0.31 mm with the increase in the pre-polymerization time. The reflectivity of the frontal and reverse sides of the foam gradually tends to be unified at frequencies of 2-18 GHz. When the CIP content increased from 30 wt% to 70 wt%, the cell diameter increased from 0.32 mm to 0.4 mm, and the uniformity of CIP distribution deteriorated. However, with the increase in the CIP content, the absorption properties of the composite materials were enhanced, and the absorption frequency band broadened. When the CIP content reached 70 wt%, the compression strength and modulus of the foam increased to 1.32 MPa and 139.0 MPa, respectively, indicating a strong ability to resist deformation.

摘要

电磁屏蔽吸收材料的应用日益广泛,而吸收剂的使用是制备吸收性泡沫材料的最重要环节之一。在本工作中,以环氧树脂为基体,羰基铁粉(CIP)为吸收剂,采用球磨分散法制备了结构型吸收性泡沫材料。扫描电子显微镜显示,CIP均匀分散在树脂基体中。分析了在预聚合时间为10分钟、30分钟和50分钟时形成的泡沫结构,发现随着预聚合时间的增加,泡孔直径从0.47毫米减小到0.31毫米。在2-18吉赫兹频率下,泡沫正面和反面的反射率逐渐趋于一致。当CIP含量从30重量%增加到70重量%时,泡孔直径从0.32毫米增加到0.4毫米,CIP分布的均匀性变差。然而,随着CIP含量的增加,复合材料的吸收性能增强,吸收频带变宽。当CIP含量达到70重量%时,泡沫的压缩强度和模量分别增加到1.32兆帕和139.0兆帕,表明其具有很强的抗变形能力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cf22/10934593/75534d9b9789/polymers-16-00698-g001.jpg

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