{"title":"用于卫星通信应用的复合可重构串联馈电微带天线","authors":"Fawzy Alsharif, Cetin Kurnaz","doi":"10.1108/compel-06-2024-0247","DOIUrl":null,"url":null,"abstract":"<h3>Purpose</h3>\n<p>This paper aims to present an innovative reconfigurable series-fed microstrip antenna using radiofrequency positive intrinsic negative (RF PIN) diodes for cognitive S-band and C-band satellite communications. The antenna can dynamically reconfigure its frequency, polarization and radiation pattern to meet diverse application needs.</p><!--/ Abstract__block -->\n<h3>Design/methodology/approach</h3>\n<p>The design involves a reconfigurable four-element microstrip antenna using FR4 substrate and copper patches. RF PIN diodes enable dynamic frequency, polarization and radiation pattern reconfiguration. Simulations and optimizations are performed using CST and HFSS, using techniques like the Nelder-Mead algorithm, particle swarm optimization, covariance matrix adaptation and trust region framework. An antenna prototype is also fabricated to validate the simulations.</p><!--/ Abstract__block -->\n<h3>Findings</h3>\n<p>The proposed antenna demonstrates significant reconfigurability: it switches between S-band (2.45 GHz, 2.52 GHz) and C-band (5.55 GHz, 5.59 GHz) with bandwidths of 120 MHz and 550 MHz, respectively. It transitions between circular and linear polarization in the S-band and modifies the radiation pattern by 45 degrees, providing an alternative radiation direction in the C-band. The antenna achieves a maximum gain of 5.95 dBi at 2.52 GHz and 93% efficiency at 5.55 GHz. Simulated results closely match those from the fabricated prototype, confirming the design’s validity.</p><!--/ Abstract__block -->\n<h3>Originality/value</h3>\n<p>The innovative use of RF PIN diodes enables comprehensive reconfigurability in frequency, polarization and radiation patterns within a single microstrip antenna, meeting the demands of S-band and C-band satellite communications. This study demonstrates superior performance, significant gains and efficiencies across various reconfiguration modes, validated by rigorous simulation and practical fabrication. The simple structural design further distinguishes this study from others in the field.</p><!--/ Abstract__block -->","PeriodicalId":501376,"journal":{"name":"COMPEL","volume":"22 1","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2024-09-12","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"A compound reconfigurable series-fed microstrip antenna for satellite communication applications\",\"authors\":\"Fawzy Alsharif, Cetin Kurnaz\",\"doi\":\"10.1108/compel-06-2024-0247\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<h3>Purpose</h3>\\n<p>This paper aims to present an innovative reconfigurable series-fed microstrip antenna using radiofrequency positive intrinsic negative (RF PIN) diodes for cognitive S-band and C-band satellite communications. 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引用次数: 0
摘要
目的 本文旨在介绍一种使用射频正本负(RF PIN)二极管的创新型可重构串联馈电微带天线,用于认知 S 波段和 C 波段卫星通信。该天线可动态重新配置其频率、极化和辐射模式,以满足不同的应用需求。设计/方法/途径该设计涉及使用 FR4 基板和铜贴片的可重新配置四元件微带天线。射频 PIN 二极管可实现动态频率、极化和辐射模式的重新配置。仿真和优化采用 CST 和 HFSS,并使用了 Nelder-Mead 算法、粒子群优化、协方差矩阵适应和信任区域框架等技术。研究结果拟议的天线具有显著的可重构性:可在 S 波段(2.45 GHz、2.52 GHz)和 C 波段(5.55 GHz、5.59 GHz)之间切换,带宽分别为 120 MHz 和 550 MHz。它能在 S 波段的圆极化和线性极化之间转换,并将辐射模式改变 45 度,从而在 C 波段提供另一个辐射方向。该天线在 2.52 GHz 频段的最大增益为 5.95 dBi,在 5.55 GHz 频段的效率为 93%。创新性/价值创新性地使用射频 PIN 二极管,在单个微带天线内实现了频率、极化和辐射模式的全面可重构,满足了 S 波段和 C 波段卫星通信的需求。这项研究展示了各种重新配置模式的卓越性能、显著增益和效率,并通过严格的模拟和实际制造进行了验证。简单的结构设计使这项研究有别于该领域的其他研究。
A compound reconfigurable series-fed microstrip antenna for satellite communication applications
Purpose
This paper aims to present an innovative reconfigurable series-fed microstrip antenna using radiofrequency positive intrinsic negative (RF PIN) diodes for cognitive S-band and C-band satellite communications. The antenna can dynamically reconfigure its frequency, polarization and radiation pattern to meet diverse application needs.
Design/methodology/approach
The design involves a reconfigurable four-element microstrip antenna using FR4 substrate and copper patches. RF PIN diodes enable dynamic frequency, polarization and radiation pattern reconfiguration. Simulations and optimizations are performed using CST and HFSS, using techniques like the Nelder-Mead algorithm, particle swarm optimization, covariance matrix adaptation and trust region framework. An antenna prototype is also fabricated to validate the simulations.
Findings
The proposed antenna demonstrates significant reconfigurability: it switches between S-band (2.45 GHz, 2.52 GHz) and C-band (5.55 GHz, 5.59 GHz) with bandwidths of 120 MHz and 550 MHz, respectively. It transitions between circular and linear polarization in the S-band and modifies the radiation pattern by 45 degrees, providing an alternative radiation direction in the C-band. The antenna achieves a maximum gain of 5.95 dBi at 2.52 GHz and 93% efficiency at 5.55 GHz. Simulated results closely match those from the fabricated prototype, confirming the design’s validity.
Originality/value
The innovative use of RF PIN diodes enables comprehensive reconfigurability in frequency, polarization and radiation patterns within a single microstrip antenna, meeting the demands of S-band and C-band satellite communications. This study demonstrates superior performance, significant gains and efficiencies across various reconfiguration modes, validated by rigorous simulation and practical fabrication. The simple structural design further distinguishes this study from others in the field.