Advanced Search
Volume 45 Issue 11
Nov.  2023
Turn off MathJax
Article Contents
HU Ning, XU Yanlin, LIU Peiguo. A Vector Analysis Method for Coupling Effects Between Energy Selective Structures and Antennas[J]. Journal of Electronics & Information Technology, 2023, 45(11): 3945-3954. doi: 10.11999/JEIT230762
Citation: HU Ning, XU Yanlin, LIU Peiguo. A Vector Analysis Method for Coupling Effects Between Energy Selective Structures and Antennas[J]. Journal of Electronics & Information Technology, 2023, 45(11): 3945-3954. doi: 10.11999/JEIT230762

A Vector Analysis Method for Coupling Effects Between Energy Selective Structures and Antennas

doi: 10.11999/JEIT230762
Funds:  The National Natural Science Foundation of China (62293491, 62101564), The Natural Science Foundation of Hunan Province (2022JJ20045)
  • Received Date: 2023-07-25
  • Rev Recd Date: 2023-10-26
  • Available Online: 2023-10-30
  • Publish Date: 2023-11-28
  • In order to analyze the coupling effect between periodic structures such as Energy Selection Structures (ESS) and antennas when ESS are used as radomes, and improve analysis efficiency, an analysis method based on Poynting vector methods is proposed in this paper. In the perspective of reciprocity between transmission and reception, the electromagnetic characteristics of antennas are analyzed as transmitters rather than receivers in conventional methods. From the perspective of reception, an antenna is regarded as a device that captures energy from free space. Therefore, the energy distribution can be described by the Poynting energy flow density curve. Similarly, the disturbance of electromagnetic waves caused by ESS can also be described by Poynting streamlines. Therefore, antennas, protective structures, and their coupling effects can be studied and analyzed through Poynting streamlines. The results indicate that the proposed method poses a good consistency with conventional analysis methods. Compared to conventional analysis methods, the proposed method in this paper can simultaneously visualize and quantitatively evaluate the coupling effect between antennas and ESS. The results can be used for the design of the size, shape, and optimal installation position of ESS, thus significantly improving design efficiency.
  • loading
  • [1]
    刘培国, 刘晨曦, 谭剑锋, 等. 强电磁防护技术研究进展[J]. 中国舰船研究, 2015, 10(2): 2–6. doi: 10.3969/j.issn.1673-3185.2015.02.002

    LIU Peiguo, LIU Chenxi, TAN Jianfeng, et al. Analysis of the research development on HPM/EMP protection[J]. Chinese Journal of Ship Research, 2015, 10(2): 2–6. doi: 10.3969/j.issn.1673-3185.2015.02.002
    [2]
    杨成. 能量选择表面仿真、测试与防护应用研究[D]. [博士论文], 国防科学技术大学, 2016.

    YANG Cheng. Simulation, mesurement and protection application of energy selective surface[D]. [Ph. D. dissertation], National University of Defense Technology, 2016.
    [3]
    易波. 新型电磁结构在隐身和电磁防护中的应用研究[D]. [博士论文], 国防科学技术大学, 2017.

    YI Bo. Research on stealth and electromagnetic protection technology based on new-type electromagnetic structure[D]. [Ph. D. dissertation], National University of Defense Technology, 2017.
    [4]
    刘晨曦. 能量选择表面设计与仿真[D]. [硕士论文], 国防科学技术大学, 2015.

    LIU Chenxi. Design and simulation of energy selective surface[D]. [Master dissertation], National University of Defense Technology, 2015.
    [5]
    虎宁, 查淞, 刘晨曦, 等. 一种双频能量选择表面的设计[J]. 微波学报, 2022, 38(6): 1–5. doi: 10.14183/j.cnki.1005-6122.202206001

    HU Ning, ZHA Song, LIU Chenxi, et al. Design of a dual-band energy selective surface[J]. Journal of Microwaves, 2022, 38(6): 1–5. doi: 10.14183/j.cnki.1005-6122.202206001
    [6]
    HU Ning, ZHA Song, TIAN Tao, et al. Design and analysis of multiband energy selective surface based on semiconductors[J]. IEEE Transactions on Electromagnetic Compatibility, 2022, 64(4): 1076–1085. doi: 10.1109/TEMC.2022.3166156
    [7]
    HU Ning, ZHAO Yuting, ZHANG Jihong, et al. High performance energy selective surface based on equivalent circuit design approach[J]. IEEE Transactions on Antennas and Propagation, 2022, 70(6): 4526–4538. doi: 10.1109/TAP.2021.3137293
    [8]
    王轲. 能量选择结构设计与导航防护应用研究[D]. [硕士论文], 国防科技大学, 2017.

    WANG Ke. Research on energy selective structure design and navigation protection application[D]. [Master dissertation], National University of Defense Technology, 2017.
    [9]
    WAKATSUCHI H, LONG Jiang, and SIEVENPIPER D F. Waveform selective surfaces[J]. Advanced Functional Materials, 2019, 29(11): 1806386. doi: 10.1002/adfm.201806386
    [10]
    ZHOU Lin and SHEN Zhongxiang. 3-D absorptive energy-selective structures[J]. IEEE Transactions on Antennas and Propagation, 2021, 69(9): 5664–5672. doi: 10.1109/TAP.2021.3061097
    [11]
    ZHOU Lin and SHEN Zhongxiang. Diffusive energy-selective surface with low backscattering[J]. IEEE Transactions on Antennas and Propagation, 2022, 70(1): 430–439. doi: 10.1109/TAP.2021.3098603
    [12]
    LUO Zhangjie, WANG Qiang, ZHANG Xinge, et al. Intensity-dependent metasurface with digitally reconfigurable distribution of nonlinearity[J]. Advanced Optical Materials, 2019, 7(19): 1900792. doi: 10.1002/adom.201900792
    [13]
    CHEN Zhenzhen, CHEN Xing, and XU Guanghui. A spatial power limiter using a nonlinear frequency selective surface[J]. International Journal of RF and Microwave Computer Aided Engineering, 2018, 28(4): e21205. doi: 10.1002/mmce.21205
    [14]
    DENG Feng, XI XiuJuan, LI Jing, et al. A Method of designing a field-controlled active frequency selective surface[J]. IEEE Antennas and Wireless Propagation Letters, 2015, 14: 630–633. doi: 10.1109/lawp.2014.2375376
    [15]
    QIN Dongmei, MA Runbo, SU Jinrong, et al. Ultra-wideband strong field protection device based on metasurface[J]. IEEE Transactions on Electromagnetic Compatibility, 2020, 62(6): 2842–2848. doi: 10.1109/TEMC.2020.3020840
    [16]
    DIAO Junming and WARNICK K F, et al. Practical superdirectivity with resonant screened apertures motivated by a poynting streamlines analysis[J]. IEEE Transactions on Antennas and Propagation, 2018, 66(1): 432–437. doi: 10.1109/tap.2017.2772929
    [17]
    DIAO Junming, LIU Lu, and WARNICK K F. Understanding the Element-gain paradox for receiving arrays using poynting streamlines[C]. 2018 IEEE International Symposium on Antennas and Propagation & USNC/URSI National Radio Science Meeting, Boston, USA, 2018: 1457–1458.
    [18]
    LIU Lu, DIAO Junming, and WARNICK K F. Array antenna gain enhancement with the poynting streamline method[J]. IEEE Antennas and Wireless Propagation Letters, 2020, 19(1): 143–147. doi: 10.1109/LAWP.2019.2956219
    [19]
    IEEE. IEEE Std 145-2013 IEEE standard for definitions of terms for antennas[S]. IEEE, 2014: 1–50.
  • 加载中

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Figures(16)

    Article Metrics

    Article views (269) PDF downloads(40) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return