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DESIGN AND FABRICATION OF MICROSTRIP PATCH ANTENNA FOR 5G APPLICATION

Yıl 2025, Cilt: 13 Sayı: 3, 709 - 727, 30.09.2025
https://doi.org/10.21923/jesd.1543526

Öz

In this study, a unique, domestic and national microstrip patch antenna that can operate at initially and domestically targeted 3.5 GHz frequency, usable in indoor/outdoor environments for the Fifth Generation (5G) application is designed and fabricated. Compared to other antenna types, it has the features of being relatively low profile, lightweight, mechanically durable and low cost. Antenna patch is in the shape of annular hexagon, and each outer edge has a semicircular slot.
In the design process, two cases with and without parasitic elements coplanar with the patch plane are investigated. For the case without the parasitic elements, suitable antenna structures are achieved by evaluating the patch geometry, substrate and antenna size selections together. Same steps are repeated for the case with the parasitic elements. One antenna without the parasitic elements is selected for fabrication by taking into account the target criteria and performance parameters of the obtained antennas. Frequency dependent dB value of scattering parameter s11, radiation pattern and gain parameters at the operating frequency are simulated, and evaluated.

Proje Numarası

1919B012217430

Kaynakça

  • Attaran, M., 2023. The İmpact of 5G on the Evolution of Intelligent Automation and Industry Digitization. Journal of Ambient Intelligence and Humanized Computing, 14.5: 5977-5993.
  • Bryant, B., Won, H., Hong, Y. K., Lee, W., Choi, M., 2022. Design of Triple-Band (DSRC, 5G, 6G) Antenna for Autonomous Vehicle Telematics, Electronics, 1-14.
  • Ceylan, O., Asan Z., Dogusgen Erbas, C., 2023. Design of Microstrip Patch Antennas with Circular Slots for UMTS Application. BİLTEK-VIII International Symposium on Current Developments in Science, Technology and Social Sciences, France.
  • Dangi, R., Lalwani, P., Choudhary, G., You, I., Pau, G., 2021. Study and Investigation on 5G Technology: A Systematic Review. Sensors, 22.1: 26.
  • Dogusgen Erbas, C., 2021. Annular Ring Microstrip Patch Antennas with Slots in Patch and Ground Plane for GSM-1800 and Radio Navigation. 8th International Conference on Electrical and Electronics Engineering.
  • Dogusgen Erbas, C., 2021. Microstrip Patch Antenna Designs with Quarter-Circular and Semi-Circular Slots in Patches for Wireless Communication Applications in Frequency Range of 1.2 GHz-4.6 GHz. Advances in Science, Technology and Engineering Systems Journal Vol. 6, No. 3, 257-262.
  • Dogusgen Erbas, C., 2023. Dual-band and dual-mode annular ring microstrip patch antenna with slots for GSM-1800 and GPS operations. Journal of the Faculty of Engineering and Architecture of Gazi University 38:1 547-556.
  • Dogusgen Erbas, C., Okatan, A., 2018. Annular Ring Microstrip Patch Antenna Structures with Slotted Ground Planes for GSM-1800. ELECO Electrical-Electronics and Biomedical Engineering Conference, Istanbul.
  • Ha, S.G., Cho, J., Jung, K.Y., 2017. Design of Miniaturized Microstrip Patch Antennas Using Non-Foster Circuits for Compact Controlled Reception Pattern Antenna Array. Journal of Electromagnetic Engineering and Science, vol. 17, no. 2, 108-110.
  • Kim, J.H., Kim, B.G., 2018. Effect of Feed Substrate Thickness on the Bandwidth and Radiation Characteristics of an Aperture-Coupled Microstrip Antenna with a High Permittivity Feed Substrate. Journal of Electromagnetic Engineering and Science, vol. 18, no. 2, 101-107.
  • Kim, J., Sung, Y., 2018. Dual-Band Microstrip Patch Antenna with Switchable Orthogonal Linear Polarizations. Journal of Electromagnetic Engineering and Science, vol. 18, no. 4, 215-220.
  • Kong, D.K., Kim, J., Woo, D., Yoon, Y.J., 2021. Broadband Modified Proximity Coupled Patch Antenna with Cavity-Backed Configuration. Journal of Electromagnetic Engineering and Science, vol. 21, no. 1, 8-14.
  • Koziel, S., Bekasiewicz, A., 2017. On reduced-cost design-oriented constrained surrogate modeling of antenna structures. IEEE Antennas and Wireless Propagation Letters, vol. 16, pp. 1618–1621.
  • Liu, Z., Wang, P., Zeng, Z., 2013. Enhancement of the Gain for Microstrip Antennas Using Negative Permeability Metamaterial on Low Temperature Co-Fired Ceramic (LTCC) Substrate. IEEE Antennas and Wireless Propagation Letters, vol.12, 429-432.
  • Marzuki, A.S.M., Rahim, A.R., Mohmd, B., Khalil, K., Naemat, A., Tee, A., 2006. Antenna isolation considerations in WCDMA repeater deployment. Proceedings of International RF and Microwave Conference, Putra Jaya, Malaysia, pp. 347-350.
  • Mashayekhi, M., Kabiri, P., Nooramin, A. S., Soleimani, M., 2023. A reconfigurable graphene patch antenna inverse design at terahertz freqencies, Scienfic Reports, 13:8369.
  • Naji, D.K., 2020. Miniature Slotted Semi-Circular Dual-Band Antenna for WiMAX and WLAN Applications. Journal of Electromagnetic Engineering and Science, vol. 20, no. 2, 115-124.
  • Nelaturi, S., Sarma, N.V., 2018. A Compact Microstrip Patch Antenna Based on Metamaterials for Wi-Fi and WiMAX Applications. Journal of Electromagnetic Engineering and Science, vol. 18, no. 3, 182-187.
  • Nguyen, D.D., Seo, C., 2022. Frequency-Selective Surface Stopband Designed with a Genetic Algorithm for Gain Enhancement of a Broadband Monopole Antenna. Journal of Electromagnetic Engineering and Science, vol. 22, no. 3, 236-244.
  • Perli, B.R., Avula, M.R., 2021. Design of Wideband Elliptical Ring Monopole Antenna Using Characteristic Mode Analysis. Journal of Electromagnetic Engineering and Science, vol. 21, no. 4, 299-306.
  • Rana, M.S., Smieee, M.M.R., 2022. Design and Analysis of Microstrip Patch Antenna for 5G Wireless Communication Systems. Bulletin of Electrical Engineering and Informatics, vol. 11, no. 6, 3329-3337.
  • Salazar,H. Y., Hariyadi, T., Pantjawati, A. B., 2020. Design of Microstrip Antenna C-Band Frequency for Ground Surveillance Radar, Materials Science and Engineering, 850.
  • Simruni, M., Jam, S., 2019. Design of High Gain, Wideband Microstrip Resonant Cavity Antenna Using FSS Superstrate with Equivalent Circuit Model. AEU International Journal of Electronics and Communications, vol. 112, article no. 152935.
  • Tahir, F.A., Arshad, T., Ullah, S., Flint, J.A., 2017. A Novel FSS for Gain Enhancement of Printed Antennas in UWB Frequency Spectrum. Microwave and Optical Technology Letters, vol. 59(10), 2698-2704.
  • Trinh-Van, S., Hwang, K.C., Park, J.Y., Kim, S.J., Shin, J.H., 2013. An Improvement of Closed-Form Formula for Mutual Impedance Computation. Journal of Electromagnetic Engineering and Science, vol. 13, no. 4, 240 244.
  • Wong, K.L., 2002. Compact and Broadband Microstrip Antennas. Wiley Series in Microwave and Optical Engineering.
  • Yeo, J., Lee, J. I., 2023. Gain Enhancement of Microstrip Patch Array Antennas Using Two Metallic Plates for 24 GHz Radar Applications, Electronics, 12, 1-18.
  • Yoon, S.J., Choi, J., 2018. A Low-Profile Broadband Array Antenna for Home Repeater Applications. Journal of Electromagnetic Engineering and Science, vol. 18, no. 4, 261-266.
  • Zhang, X.Y., Tian, Y.B., Zheng, X., 2020. Antenna Optimization Design Based on Deep Gaussian Process Model. School of Electronics and Information, Jiangsu University of Science and Technology, Hindawi International Journal of Antennas and Propagation.

5G UYGULAMASINA YÖNELİK MİKROŞERİT YAMA ANTEN TASARIMI VE ÜRETİMİ

Yıl 2025, Cilt: 13 Sayı: 3, 709 - 727, 30.09.2025
https://doi.org/10.21923/jesd.1543526

Öz

Bu çalışmada, Beşinci Nesil (5G) uygulamasına yönelik, ülkemizde ilk etapta hedeflenen 3.5 GHz çalışma frekansında çalışabilecek, özgün, yerli ve milli, iç/dış ortamlarda kullanılabilecek bir mikroşerit yama anten tasarımı yapılmış ve üretimi gerçekleştirilmiştir. Diğer anten türleriyle kıyaslandığında göreli düşük profilli, hafif, mekanik olarak dayanıklı ve düşük maliyetli olma özelliklerine sahiptir. Anten yaması halka altıgen şeklinde olup her bir dış kenarında yarım daire şeklinde yarık içermektedir. Tasarım sürecinde yama düzlemiyle eş düzlemli parazitik elemanların kullanılmadığı ve kullanıldığı iki durum incelenmiştir. Parazitik elemanların kullanılmadığı durum için yama geometrisi, alt taban ve anten boyutu seçimleri birlikte değerlendirilerek uygun anten yapılarına ulaşılmıştır. Aynı adımlar parazitik elemanların kullanıldığı durum için de tekrarlanmıştır. Hedef kriterler ve elde edilen antenlere ait başarım parametreleri göz önüne alınarak parazitik elemana sahip olmayan bir anten üretim için seçilmiştir. Frekansa bağlı s11 saçılma parametresinin dB değeri, çalışma frekansına ait maksimum ışıma değeri ve kazanç parametreleri benzetimler ile elde edilmiş ve değerlendirilmiştir.

Etik Beyan

Olumsuz bir etik durum bulunmamaktadır.

Destekleyen Kurum

TÜBİTAK

Proje Numarası

1919B012217430

Teşekkür

Bu çalışma TÜBİTAK tarafından 2209-A Üniversite Öğrencileri Araştırma Projeleri Destekleme Programı kapsamında desteklenmiştir.

Kaynakça

  • Attaran, M., 2023. The İmpact of 5G on the Evolution of Intelligent Automation and Industry Digitization. Journal of Ambient Intelligence and Humanized Computing, 14.5: 5977-5993.
  • Bryant, B., Won, H., Hong, Y. K., Lee, W., Choi, M., 2022. Design of Triple-Band (DSRC, 5G, 6G) Antenna for Autonomous Vehicle Telematics, Electronics, 1-14.
  • Ceylan, O., Asan Z., Dogusgen Erbas, C., 2023. Design of Microstrip Patch Antennas with Circular Slots for UMTS Application. BİLTEK-VIII International Symposium on Current Developments in Science, Technology and Social Sciences, France.
  • Dangi, R., Lalwani, P., Choudhary, G., You, I., Pau, G., 2021. Study and Investigation on 5G Technology: A Systematic Review. Sensors, 22.1: 26.
  • Dogusgen Erbas, C., 2021. Annular Ring Microstrip Patch Antennas with Slots in Patch and Ground Plane for GSM-1800 and Radio Navigation. 8th International Conference on Electrical and Electronics Engineering.
  • Dogusgen Erbas, C., 2021. Microstrip Patch Antenna Designs with Quarter-Circular and Semi-Circular Slots in Patches for Wireless Communication Applications in Frequency Range of 1.2 GHz-4.6 GHz. Advances in Science, Technology and Engineering Systems Journal Vol. 6, No. 3, 257-262.
  • Dogusgen Erbas, C., 2023. Dual-band and dual-mode annular ring microstrip patch antenna with slots for GSM-1800 and GPS operations. Journal of the Faculty of Engineering and Architecture of Gazi University 38:1 547-556.
  • Dogusgen Erbas, C., Okatan, A., 2018. Annular Ring Microstrip Patch Antenna Structures with Slotted Ground Planes for GSM-1800. ELECO Electrical-Electronics and Biomedical Engineering Conference, Istanbul.
  • Ha, S.G., Cho, J., Jung, K.Y., 2017. Design of Miniaturized Microstrip Patch Antennas Using Non-Foster Circuits for Compact Controlled Reception Pattern Antenna Array. Journal of Electromagnetic Engineering and Science, vol. 17, no. 2, 108-110.
  • Kim, J.H., Kim, B.G., 2018. Effect of Feed Substrate Thickness on the Bandwidth and Radiation Characteristics of an Aperture-Coupled Microstrip Antenna with a High Permittivity Feed Substrate. Journal of Electromagnetic Engineering and Science, vol. 18, no. 2, 101-107.
  • Kim, J., Sung, Y., 2018. Dual-Band Microstrip Patch Antenna with Switchable Orthogonal Linear Polarizations. Journal of Electromagnetic Engineering and Science, vol. 18, no. 4, 215-220.
  • Kong, D.K., Kim, J., Woo, D., Yoon, Y.J., 2021. Broadband Modified Proximity Coupled Patch Antenna with Cavity-Backed Configuration. Journal of Electromagnetic Engineering and Science, vol. 21, no. 1, 8-14.
  • Koziel, S., Bekasiewicz, A., 2017. On reduced-cost design-oriented constrained surrogate modeling of antenna structures. IEEE Antennas and Wireless Propagation Letters, vol. 16, pp. 1618–1621.
  • Liu, Z., Wang, P., Zeng, Z., 2013. Enhancement of the Gain for Microstrip Antennas Using Negative Permeability Metamaterial on Low Temperature Co-Fired Ceramic (LTCC) Substrate. IEEE Antennas and Wireless Propagation Letters, vol.12, 429-432.
  • Marzuki, A.S.M., Rahim, A.R., Mohmd, B., Khalil, K., Naemat, A., Tee, A., 2006. Antenna isolation considerations in WCDMA repeater deployment. Proceedings of International RF and Microwave Conference, Putra Jaya, Malaysia, pp. 347-350.
  • Mashayekhi, M., Kabiri, P., Nooramin, A. S., Soleimani, M., 2023. A reconfigurable graphene patch antenna inverse design at terahertz freqencies, Scienfic Reports, 13:8369.
  • Naji, D.K., 2020. Miniature Slotted Semi-Circular Dual-Band Antenna for WiMAX and WLAN Applications. Journal of Electromagnetic Engineering and Science, vol. 20, no. 2, 115-124.
  • Nelaturi, S., Sarma, N.V., 2018. A Compact Microstrip Patch Antenna Based on Metamaterials for Wi-Fi and WiMAX Applications. Journal of Electromagnetic Engineering and Science, vol. 18, no. 3, 182-187.
  • Nguyen, D.D., Seo, C., 2022. Frequency-Selective Surface Stopband Designed with a Genetic Algorithm for Gain Enhancement of a Broadband Monopole Antenna. Journal of Electromagnetic Engineering and Science, vol. 22, no. 3, 236-244.
  • Perli, B.R., Avula, M.R., 2021. Design of Wideband Elliptical Ring Monopole Antenna Using Characteristic Mode Analysis. Journal of Electromagnetic Engineering and Science, vol. 21, no. 4, 299-306.
  • Rana, M.S., Smieee, M.M.R., 2022. Design and Analysis of Microstrip Patch Antenna for 5G Wireless Communication Systems. Bulletin of Electrical Engineering and Informatics, vol. 11, no. 6, 3329-3337.
  • Salazar,H. Y., Hariyadi, T., Pantjawati, A. B., 2020. Design of Microstrip Antenna C-Band Frequency for Ground Surveillance Radar, Materials Science and Engineering, 850.
  • Simruni, M., Jam, S., 2019. Design of High Gain, Wideband Microstrip Resonant Cavity Antenna Using FSS Superstrate with Equivalent Circuit Model. AEU International Journal of Electronics and Communications, vol. 112, article no. 152935.
  • Tahir, F.A., Arshad, T., Ullah, S., Flint, J.A., 2017. A Novel FSS for Gain Enhancement of Printed Antennas in UWB Frequency Spectrum. Microwave and Optical Technology Letters, vol. 59(10), 2698-2704.
  • Trinh-Van, S., Hwang, K.C., Park, J.Y., Kim, S.J., Shin, J.H., 2013. An Improvement of Closed-Form Formula for Mutual Impedance Computation. Journal of Electromagnetic Engineering and Science, vol. 13, no. 4, 240 244.
  • Wong, K.L., 2002. Compact and Broadband Microstrip Antennas. Wiley Series in Microwave and Optical Engineering.
  • Yeo, J., Lee, J. I., 2023. Gain Enhancement of Microstrip Patch Array Antennas Using Two Metallic Plates for 24 GHz Radar Applications, Electronics, 12, 1-18.
  • Yoon, S.J., Choi, J., 2018. A Low-Profile Broadband Array Antenna for Home Repeater Applications. Journal of Electromagnetic Engineering and Science, vol. 18, no. 4, 261-266.
  • Zhang, X.Y., Tian, Y.B., Zheng, X., 2020. Antenna Optimization Design Based on Deep Gaussian Process Model. School of Electronics and Information, Jiangsu University of Science and Technology, Hindawi International Journal of Antennas and Propagation.
Toplam 29 adet kaynakça vardır.

Ayrıntılar

Birincil Dil Türkçe
Konular Mühendislik Elektromanyetiği
Bölüm Araştırma Makaleleri \ Research Articles
Yazarlar

İlayda Özkeser 0009-0008-5899-0306

Cihan Dogusgen Erbas 0000-0003-1977-3567

Proje Numarası 1919B012217430
Yayımlanma Tarihi 30 Eylül 2025
Gönderilme Tarihi 4 Eylül 2024
Kabul Tarihi 6 Ağustos 2025
Yayımlandığı Sayı Yıl 2025 Cilt: 13 Sayı: 3

Kaynak Göster

APA Özkeser, İ., & Dogusgen Erbas, C. (2025). 5G UYGULAMASINA YÖNELİK MİKROŞERİT YAMA ANTEN TASARIMI VE ÜRETİMİ. Mühendislik Bilimleri ve Tasarım Dergisi, 13(3), 709-727. https://doi.org/10.21923/jesd.1543526