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Warianty tytułu
Wpływ rotacji CSRR na rozmiar i polaryzację anteny
Języki publikacji
Abstrakty
This paper describes the design and development of microstrip patch antenna with circular metamaterial structure at the ground plane that will be rotated multiple times at an incremental angle of 22.5°. There are several benefits that result from the introduction of the metamaterial structure rotated to various angles to the patch antenna such as increased number of frequencies, increased efficiency and gain at lower frequencies, reduced size antenna, and changed polarization. The antenna is also horizontally polarized at lower frequencies with high gain and efficiency when the metamaterial structure is rotated to 22.5° and 45° while operational at only one lower frequency for 67.5°. These responses are confirmed through the standard antenna measurement process.
Słowa kluczowe
Wydawca
Czasopismo
Rocznik
Tom
Strony
216--222
Opis fizyczny
Bibliogr. 22 poz., rys., tab.
Twórcy
autor
- Faculty of Electrical Engineering, Universiti Teknologi Malaysia, Johor Bahru, Malaysia
autor
- Faculty of Electrical Engineering, Universiti Teknologi Malaysia, Johor Bahru, Malaysia
autor
- Institute of Electronics and Telecommunications of Rennes IETR, University of Rennes 1, Rennes, France
autor
- Faculty of Electrical Engineering, Universiti Teknologi Malaysia, Johor Bahru, Malaysia
autor
- Faculty of Electrical Engineering, Universiti Teknologi Malaysia, Johor Bahru, Malaysia
Bibliografia
- [1] El Yousfi, A., Lamkaddem, A., Abdalmalak, K.A., et al. A miniaturized triple-band and dual-polarized monopole antenna based on a CSRR perturbed ground plane. IEEE Access, (2021), 9, pp.164292-164299.
- [2] Aminu-Baba, M., Rahim, M.K.A., Zubir, F., et al. Microstrip antenna with CSRR ground structure. International Symposium on Antennas and Propagation (ISAP), 2017, (pp. 1-2).
- [3] Reddy, G.B. And Kumar, D.S. Miniaturization of microstrip slot antenna using SRR and CSRR loading. 3rd International Conference on Microwave and Photonics (ICMAP), 2018, (pp. 1-2).
- [4] Nadzir NM, Rahim MK, Himdi M, et al. Millimeter Wave Linear Array Microstrip Antenna with Circular CSRR. International Symposium on Antennas and Propagation (ISAP), 2021 Oct 19 (pp. 1-2).
- [5] Selvaraju, R., Jamaluddin, M.H., Kamarudin, M.R., et al. Mutual coupling reduction and pattern error correction in a 5G beamforming linear array using CSRR. IEEE Access, 2018, 6, pp.65922-65934.
- [6] Ni, C., Jiang, J., Wu, W.J., et al. Decoupling method based on complementary split ring resonator (CSRR) for two cone shipborne antennas. IEEE Access, 2021, 9, pp.167845- 167854.
- [7] Chen L, Ma Q, Luo SS, et al. Touch-Programmable Metasurface for Various Electromagnetic Manipulations and Encryptions. Small, 2022, 18(45):2203871.
- [8] Nadeem, I., and Choi, D.Y. Study on mutual coupling reduction technique for MIMO antennas. IEEE Access, 2018, 7, pp.563- 586.
- [9] Wang, Z., Li, C. and Yin, Y. A meta-surface antenna array decoupling (MAAD) design to improve the isolation performance in a MIMO system. IEEE Access, 2020, 8, pp.61797-61805.
- [10] Feng, S., Zhang, L., Yu, H.W., et al. A single-layer wideband differential-fed microstrip patch antenna with complementary split-ring resonators loaded. IEEE Access, 2019, 7, pp.132041- 132048.
- [11] Bilal, R.M.H., Baqir, M.A., Choudhury, P.K., et al. Wideband microwave absorber comprising metallic split-ring resonators surrounded with E-shaped fractal metamaterial. IEEE Access, 2021, 9, pp.5670-5677.
- [12] M. S. Islam, M. I. Ibrahimy, S. M. A. Motakabber, et al. A Rectangular Inset-Fed Patch Antenna with Defected Ground Structure for ISM Band, 7th International Conference on Computer and Communication Engineering (ICCCE), 2018, pp. 104-108, doi: 10.1109/ICCCE.2018.8539260.
- [13] Marqués, R., Martin, F. and Sorolla, M. Metamaterials with Negative Parameters: Theory, Design, And Microwave Applications. John Wiley & Sons, 2011.
- [14] Afsar MS, Faruque MR, Abdullah S, et al. An Innovative Compact Split-Ring-Resonator-Based Power Tiller Wheel-Shaped Metamaterial for Quad-Band Wireless Communication. Materials. 2023 28;16(3):1137.
- [15] T. Ali, S. A. W. Mohammad, and R. C. Biradar. A novel metamaterial rectangular CSRR with pass band characteristics at 2.95 and 5.23 GHz. 2nd IEEE International Conference on Recent Trends in Electronics, Information & Communication Technology (RTEICT), 2017, pp. 256-260, doi: 10.1109/RTEICT.2017.8256597.
- [16] Zhang, X., Wu, W., Ma, Y., et al. Design dual-polarization frequency selective rasorber using split ring resonators. IEEE Access, 2019, 7, pp.101139-101146.
- [17] Budnarowska M, Rafalski S, Mizeraczyk J. Vector-Field Visualization of the Total Reflection of the EM Wave by an SRR Structure at the Magnetic Resonance. Energies. 2021 Dec 24;15(1):111.
- [18] Soerbakti Y, Syahputra RF, Gamal MD, et al. Improvement of low-profile microstrip antenna performance by hexagonal-shaped SRR structure with DNG metamaterial characteristic as UWB application. Alexandria Engineering Journal. 2022 1;61(6):4241-52.
- [19] Liu S, Wang Z, Dong Y. Compact wideband SRR-inspired antennas for 5G microcell applications. IEEE Transactions on Antennas and Propagation. 2021 6;69(9):5998-6003.
- [20] Kaur N, Sivia JS, Kumar M. SRR and rectangular stubs loaded novel fractal antenna realization for multiband wireless applications. Wireless Personal Communications. 2021 Sep;120(1):515-33.
- [21] Maccartney, G.R., Rappaport, T.S., Sun, S., et al. Indoor office wideband millimeter-wave propagation measurements and channel models at 28 and 73 GHz for ultra-dense 5G wireless networks. IEEE Access, 2015, 3, pp.2388-2424.
- [22] Ghosh, S. and Sen, D. An inclusive survey on array antenna design for millimeter-wave communications. IEEE Access, 2019, 7, pp.83137-83161.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa nr POPUL/SP/0154/2024/02 w ramach programu "Społeczna odpowiedzialność nauki II" - moduł: Popularyzacja nauki i promocja sportu (2025).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-f0ad96b8-c58a-427b-82db-d7b72b816484
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