+Advanced Search
Carbonyl Iron Composite Microwave Absorbing Coating Basedon Metamaterial Design
Affiliation:

Army Engineering University Shijiazhuang Campus

  • Article
  • | |
  • Metrics
  • |
  • Reference [15]
  • |
  • Related [20]
  • | | |
  • Comments
    Abstract:

    In order to obtain low-frequency broadband absorbing materials, carbonyl iron/CoFe2O4/PANI ternary composites were prepared by co-precipitation and in-situ polymerization techniques. Using this as a dielectric layer, a metamaterial-based structure was designed based on the idea of metamaterials. The carbonyl iron composite absorbing coating improves the low frequency absorbing properties. The effects of the structural design of metamaterials on the absorbing properties of carbonyl iron/CoFe2O4/PANI coatings were analyzed, and the absorbing mechanism of the composite coatings with superstructures was studied and discussed. Through simulation optimization, it is found that when the resistance of the resistive film is 10mΩ/□ and the pattern size of the hollow cross-resistive film is optimal, the composite coating after giving the metamaterial structure at the same thickness has a wider width than the single carbonyl iron coating. The absorption band and the lower absorption frequency are less than -10 dB in the 3.8-6.9 GHz band. Studies have shown that the integration of metamaterial structure into the performance improvement of carbonyl iron coating can effectively improve its low frequency absorbing performance.

    Reference
    [1]Zhang Jian, Zhang Wenyan, Xi Zhengping. Rare Metal Materials and Engineering(稀有金属材料与工程)[J], 2013, 336(4): 194-202
    [2]Zhao Tingkai(赵廷凯), Zhang Hongyan(张红燕), Zhu Ruoxing(朱若星), et al. Rare Metal Materials and Engineering(稀有金属材料与工程)[J], 2016, 45(8): 2165-2168
    [3]Zhang Z, Wei J, Yang W, et al. Physica B:Condensed Matter[J], 2011, 406: 3896
    [4]Walser T, Kang W. Trans Magnetics[J], 1998, 34: 1144
    [5]Xu Y Y, Zhang D Y, Cai J, et al. Journal of Magnetism and Magnetic Materials[J], 2013, 327: 82-86
    [6]Han R, Han X H, Qiao L, et al. Physica B:Condensed Matter[J], 2011, 406: 1932-1935
    [7]Yin C L, Fan J L, Bai L, et al. Journal of Magnetism and Magnetic Materials[J], 2013, 340: 65
    [8]Naeimed B L, Khadijeh D, Elham Y, et al. Silicon[J], 2018, 10: 1337-1343
    [9]Zhou Y Y, Xie H, Zhou W C, et al. Journal of Magnetism and Magnetic Materials[J], 2018, 446: 143-149
    [10]Liu Y, Liu X X, Wang X J. Journal of Alloys and Compounds[J], 2014, 584: 249-253
    [11]Pang Yongqiang(庞永强). The Theory and Design of Metamaterial Absorbers(电磁吸波超材料理论与设计研究)[D]. Changsha: National University of Defense Technology, 2013: 1-5
    [12]Zhang Yong(张勇), Zhang Binzhen(张斌珍), Duan Junping(段俊萍), et al. Journal of Materials Engineering(材料工程)[J], 2016, 46(11): 120-128
    [13]Zhang Long(张龙), Hou Jieqiong(后洁琼), Qiu Hu(秋虎), et al. Chemical Journal of Chinese Universities(高等学校化学学报)[J], 2017, 38(12): 2352-2355
    [14]Zhou Zhuohui(周卓辉), Liu Xiaolai(刘晓来), Huang Daqing(黄大庆), et al. Acta Physica Sinica(物理学报)[J], 2014, 63(18): 1-5
    [15]Feng Yongbao(冯永宝), Tang Chuanming(唐传明), Qiu Tai(邱泰). Journal of Materials Engineering(材料工程)[J], 2014, 2: 1-5
    Cited by
    Comments
    Comments
    分享到微博
    Submit
Get Citation

[Li Ze, Zhao Fang, Wang Jianjiang, Gao Haitao. Carbonyl Iron Composite Microwave Absorbing Coating Basedon Metamaterial Design[J]. Rare Metal Materials and Engineering,2019,48(11):3628~3633.]
DOI:10.12442/j. issn.1002-185X.20190238

Copy
Article Metrics
  • Abstract:941
  • PDF: 1232
  • HTML: 169
  • Cited by: 0
History
  • Received:March 21,2019
  • Revised:April 16,2019
  • Adopted:May 15,2019
  • Online: December 10,2019