A Passive Adaptive Metamaterial Radome based on PIN Diodes
DOI:
https://doi.org/10.13052/2023.ACES.J.381201Keywords:
Metamaterial, radome, tunable devices, wire mediaAbstract
Automatic protection of EM detecting systems from unexpected high-power incidence is important to the robustness and life of a passive detecting system. In this paper, an adaptive metamaterial radome which automatically shields the receiving antenna from strong incident wave is designed. Based on standard wire medium, PIN diodes are added between adjacent wires. When the incident EM wave is weak, the diodes are in “off” state and affect little to the transmission of the wire medium. When the incident EM wave is strong enough to turn the diodes to “on” state, electric currents will be automatically formed in the diodes and the power transmitted to the antenna will be largely reduced. The adaptive transmission of the proposed radome is validated by the simulation and measurement results.
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M. Latrach, H. Rmili, C. Sabatier, E. Seguenot, and S. Toutain, “Design of a new type of metamaterial radome for low frequencies,” Microwave and Optical Technology Letters, vol. 52, no. 5, pp. 1119-1123, 2010.
G. V. Trentini, “Partially reflecting sheet arrays,” Ire Transactions on Antennas & Propagation, vol. 4, no. 4, pp. 666-671, 1956.
A. P. Feresidis and J. C. Vardaxoglou, “High gain planar antenna using optimised partially reflective surfaces,” Microwaves Antennas & Propagation Iee Proceedings, vol. 148, no. 6, pp. 345-350, 2001.
A. P. Feresidis, G. Goussetis, S. Wang, and J. C. Vardaxoglou, “Artificial magnetic conductor surfaces and their application to low-profile high-gain planar antennas,” IEEE Transactions on Antennas and Propagation, vol. 53, no. 1, pp. 209-215, 2005.
Z.-J. Han, W. Song, and X.-Q. Sheng, “Broadband circularly polarized antenna by using polarization conversion metasurface,” Applied Computational Electromagnetics Society (ACES) Journal, vol. 35, no. 6, pp. 656-661, June 2020.
P. Jha, A. Kumar, A. De, and R. K. Jain, “CPW-fed metamaterial inspired compact multiband antenna for LTE/5G/WLAN communication,” Frequenz, vol. 76, no. 7-8, pp. 401-407, 2022.
P. Jha, A. Kumar, and N. Sharma, “A metamaterial inspired split ring resonator accomplished multiband antenna for 5G and other wireless applications,” Revue Roumaine des Sciences Techniques, Série Électrotechnique et Énergétique, vol. 68, no. 2, pp. 127-131, 2023.
H. Zhou, S. Qu, B.-Q. Lin, J. Wang, H. Ma, Z. Xu, W. Peng, and P. Bai, “Filter-antenna consisting of conical FSS radome and monopole antenna,” IEEE Transactions on Antennas & Propagation, vol. 60, no. ISOCC, pp. 3040-3045, 2012.
P. A. Belov and C. R. Simovski, “Canalization of subwavelength images by electromagnetic crystals,” PIERS Online, vol. 1, no. 1, pp. 37-41, 2005.
P. A. Belov, Y. Hao, and S. Sudhakaran, “Sub-wavelength imaging by a slab of wire medium,” IEEE Antennas and Propagation Society International Symposium, pp. 4515-4518, 2006.
P. A. Belov and M. G. Silveirinha, “Resolution of subwavelength transmission devices formed by a wire media,” Physical Review E, vol. 73, no. 2, pp. 645-666, 2006.
X. Radu, A. Lapeyronnie, and C. Craeye, “Numerical and experimental analysis of a wire medium collimator for magnetic resonance imaging,” Electromagnetics, vol. 28, no. 7, pp. 531-543, 2008.
S. Kosulnikov, D. Filonov, S. Glybovski, P. Belov, S. Tretyakov, and C. Simovski, “Wire-medium hyperlens for enhancing radiation from subwavelength dipole sources,” IEEE Transactions on Antennas & Propagation, vol. 63, no. 11, pp. 4848-4856, 2015.
S. Kosulnikov, M. Mirmoosa, D. Vovchuk, S. Tretyakov, S. Glybovski, and C. Simovski, “Enhancement of radiation with irregular wire media,” IEEE Transactions on Antennas & Propagation, 2016.
P. Belov, R. Marqués, S. Maslovski, I. Nefedov, M. Silveirinha, C. Simovski, and S. Tretyakov, “Strong spatial dispersion in wire media in the very large wavelength limit,” Physical Review B, vol. 67, no. 11, pp. 113103, 2003.
J. P. Turpin, D. H. Werner, and D. E. Wolfe, “Design considerations for spatially reconfigurable metamaterials,” IEEE Transactions on Antennas and Propagation, vol. 63, no. 8, pp. 3513-3521, 2015.
Y. Luo, K. Qin, H. Ke, B. Xu, S. Xu, and G. Yang, “An active metamaterial antenna with beam scanning manipulation based on a digitally-modulated array factor method,” IEEE Transactions on Antennas and Propagation, no. 99, pp. 1-1,2021.
M. M. Shirkolaei and J. Ghalibafan, “Magnetically scannable slotted waveguide antenna based on the ferrite with gain enhancement,” Waves in Random and Complex Media, pp. 1-11, 2021.
M. Shirkolaei and M. Aslinezhad, “Substrate integrated waveguide filter based on the magnetized ferrite with tunable capability,” Microwave and Optical Technology Letters, vol. 63, no. 4, pp. 1120-1125, 2021.
M. M. Shirkolaei and J. Ghalibafan, “Unbalanced CRLH behavior of ferrite-loaded waveguide operated below cutoff frequency,” Waves in Random and Complex Media, vol. 32, no. 2, pp. 755-770, 2022.
H. Bai, M.-B. Yan, W. Li, J. Wang, L. Zheng, H. Wang, and S. Qu, “Tunable frequency selective surface with angular stability,” IEEE Antennas and Wireless Propagation Letters, vol. 20, no. 6, pp. 1108-1112, 2021.
Y. Zhao, J. Fu, Z. Liang, Z. Wang, Z. Zhang, B. Lv, and W. Chen, “Reconfigurable active frequency selective surface for ultra-wideband applications,” International Journal of RF and Microwave Computer-Aided Engineering, no. 5, pp. e22222, 2020.
K. Wang, P. Liu, and H. Liu, “A miniaturized, low-profile, self-actuated radome for EM protection,” International Applied Computational Electromagnetics Society Symposium (ACES), Suzhou, China, pp. 1-2, 2017.
Y. J. Zhou, H. X. Xu, Q. Y. Li, X. B. Wu, and S. Y. Xiao, “Active self-tuning metasurface radome for high-power microwave,” CIE International Conference on Radar (Radar), Haikou, Hainan, China, pp. 2719-2722, 2021.
Data sheet of the RF PIN diode of Infineon Corporation with model of BAR64-5. https://www.infineon.com/dgdl/Infineon-BAR64-05-DS-v01_01-EN.pdf?fileId=5546d462689a790c01690f026ce63904.
PIN SPAR data sheet of the RF PIN diode of Infineon Corporation. https://www.infineon.com/cms/cn/product/rf/rf-diode/rf-pin-diode/antenna-switch/bar64-05/#!?fileId=5546d46269e1c0190169ecdea94b46e8.