Dual Band Slotted Printed Circular Patch Antenna With Superstrate and EBG Structure for 5G Applications

B. Hasan, Kamran Raza
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引用次数: 5

Abstract

Slotted circular printed layered patch antenna is designed, simulated and fabricated for 5G (Fifth Generation) wireless communication applications. The antenna consists of slots in the main radiating circular patch element for miniaturizing the size of the radiating element and providing dual band radiation characteristics. The feed line is separated on bottom substrate layer with EBG (Electromagnetic Band-Gap) embedded for enhancing the gain characteristics of the antenna. Superstrate layer is also used for improving the gain of the antenna where the distance from the radiating antenna element is optimized for maximizing the impedance bandwidth and radiation characteristics. The feed realization and impedance matching of the radiating slotted circular patch antenna is done by inducing slot at the middle ground plane of the slot embedded circular patch antenna system. The proposed configuration provides power radiation gain values of more than 5 dB for the Ka band of communications, whereas the impedance bandwidth of the antenna is verified for the dual resonances at 27.5 and 28.5 GHz. Dual band radiation characteristics are attained by embedding and optimizing the slot length and width in the circular patch radiator element that is placed on the upper face of the substrate RT Rogers Duroid 5880 layer. The length of the microstrip feed line embedded in the lower layer of the substrate is optimized for providing required bandwidth characteristics for the dual frequency point radiations. The antenna configuration is designed, modeled and simulated in CST (Central Standard Time) Microwave studio. The antenna is fabricated and measured vs simulated frequency response, gain patterns and current density plots are presented for the verification of antenna operation in the desired frequency bands.
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面向5G应用的双频段开槽印刷圆形贴片天线
针对5G(第五代)无线通信应用,设计、模拟和制造了开槽圆形印刷层状贴片天线。该天线由主辐射圆形贴片元件中的槽组成,用于使辐射元件的尺寸小型化并提供双波段辐射特性。馈线在底部基板层上分开,并嵌入EBG(电磁带隙),以增强天线的增益特性。超层还用于提高天线的增益,其中与辐射天线元件的距离被优化以最大化阻抗带宽和辐射特性。通过在槽嵌入式圆形贴片天线系统的中地平面处诱导槽来实现辐射型槽圆形贴片天线的馈电实现和阻抗匹配。所提出的配置为Ka波段的通信提供了超过5 dB的功率辐射增益值,而天线的阻抗带宽在27.5和28.5 GHz的双谐振下进行了验证。双波段辐射特性是通过在放置在衬底RT Rogers Duroid 5880层上面的圆形贴片辐射元件中嵌入和优化狭缝长度和宽度来实现的。嵌入基板下层的微带馈线的长度被优化为提供双频点辐射所需的带宽特性。在中央标准时间(CST)微波工作室设计、建模和仿真了天线的结构。制作并测量了天线与模拟频率响应,给出了增益图和电流密度图,以验证天线在所需频段内的工作。
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