用于ISM和PCS通信的陷波消除器宽带CSRR加载单极分形天线

IF 1.4 Q2 ENGINEERING, MULTIDISCIPLINARY
Atul Varshney, Vipul K. Sharma, T. Neebha, N. Kumari
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引用次数: 0

摘要

目的本文旨在提出一种低成本、边缘馈电、风车形陷波带消除器、圆形单极天线,该天线在辐射导体的中间实际负载一个互补的开口环形谐振器(CSRR),并使用部分接地来获得宽带性能。设计/方法/方法为了补偿由于基板底部的全(完整)接地平面而导致的增益和反射系数的降低,天线进一步加载部分接地和CSRR。馈线附近接地长度的减少提高了阻抗带宽,并且引入的CSRR通过额外的谐振尖峰提高了增益。这导致在设计频率2.45下的峰值增益为3.895dBi GHz。圆形贴片中三个臂的延伸不仅使峰值增益增加了4.044dBi,而且消除了陷波带,提高了分数带宽1.65–2.92 GHz.Findings这项工作报告了从1.63到10dB的带宽 GHz至2.91 GHz,涵盖传统覆盖应用和新的特定用途应用,如用于未来物联网(NB-IoT)机器对机器通信的窄LTE频带1.8/1.9/2.1/2.3/2.5/2.6 GHz、工业、自动化和业务关键型案例(2.1/2.3/2.6 GHz)、工业、社会和医疗应用,如WiMAX(3.5 GHz)、Wi-Fi3(2.45 GHz)、GSM(1.9 GHz)、公共安全带、蓝牙(2.40–2.485 GHz)、Zigbee(2.40–2.48Ghz)、工业科学医疗(ISM)频段(2.4–2.5 GHz)、WCDMA(1.9、2.1 GHz),3 G(2.1 GHz),4 G LTE(2.1–2.5 GHz)和其他个人通信服务应用。最后给出了估算的RLC等效电路。实际意义由于蓝牙、Zigbee、WiFi3和ISM频段的全覆盖,所提出的制造天线适用于低功率、低数据速率和无线/有线短距离物联网医疗应用。独创性/价值天线是在一块(66.4 毫米×66.4 毫米×1.6 mm)的低成本低剖面FR-4环氧基片(0.54λg×0.54λg),介电常数为4.4,损耗角正切为0.02,厚度为1.6 在Keysight technology(N9917A)矢量网络分析仪上测试了天线的反射系数、阻抗和驻波比,并在消声室内测量了辐射方向图。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Notch-band eliminator wideband CSRR loaded monopole fractal antenna for ISM and PCS communications
Purpose This paper aims to present a low-cost, edge-fed, windmill-shaped, notch-band eliminator, circular monopole antenna which is practically loaded with a complementary split ring resonator (CSRR) in the middle of the radiating conductor and also uses a partial ground to obtain wide-band performance. Design/methodology/approach To compensate for the reduced value of gain and reflection coefficient because of the full (complete) ground plane at the bottom of the substrate, the antenna is further loaded with a partial ground and a CSRR. The reduction in the length of ground near the feed line improves the impedance bandwidth, and introduced CSRR results in improved gain with an additional resonance spike. This results in a peak gain 3.895dBi at the designed frequency 2.45 GHz. The extending of three arms in the circular patch not only led to an increase of peak gain by 4.044dBi but also eliminated the notch band and improved the fractional bandwidth 1.65–2.92 GHz. Findings The work reports a –10dB bandwidth from 1.63 GHz to 2.91 GHz, which covers traditional coverage applications and new specific uses applications such as narrow LTE bands for future internet of things (NB-IoT) machine-to-machine communications 1.8/1.9/2.1/2.3/2.5/2.6 GHz, industry, automation and business-critical cases (2.1/2.3/2.6 GHz), industrial, society and medical applications such as Wi-MAX (3.5 GHz), Wi-Fi3 (2.45 GHz), GSM (1.9 GHz), public safety band, Bluetooth (2.40–2.485 GHz), Zigbee (2.40–2.48Ghz), industrial scientific medical (ISM) band (2.4–2.5 GHz), WCDMA (1.9, 2.1 GHz), 3 G (2.1 GHz), 4 G LTE (2.1–2.5 GHz) and other personal communication services applications. The estimated RLC electrical equivalent circuit is also presented at the end. Practical implications Because of full coverage of Bluetooth, Zigbee, WiFi3 and ISM band, the proposed fabricated antenna is suitable for low power, low data rate and wireless/wired short-range IoT-enabled medical applications. Originality/value The antenna is fabricated on a piece (66.4 mm × 66.4 mm × 1.6 mm) of low-cost low profile FR-4 epoxy substrate (0.54 λg × 0.54 λg) with a dielectric constant of 4.4, a loss tangent of 0.02 and a thickness of 1.6 mm. The antenna reflection coefficient, impedance and VSWR are tested on the Keysight technology (N9917A) vector network analyzer, and the radiation pattern is measured in an anechoic chamber.
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来源期刊
World Journal of Engineering
World Journal of Engineering ENGINEERING, MULTIDISCIPLINARY-
CiteScore
4.20
自引率
10.50%
发文量
78
期刊介绍: The main focus of the World Journal of Engineering (WJE) is on, but not limited to; Civil Engineering, Material and Mechanical Engineering, Electrical and Electronic Engineering, Geotechnical and Mining Engineering, Nanoengineering and Nanoscience The journal bridges the gap between materials science and materials engineering, and between nano-engineering and nano-science. A distinguished editorial board assists the Editor-in-Chief, Professor Sun. All papers undergo a double-blind peer review process. For a full list of the journal''s esteemed review board, please see below.
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