• Title/Summary/Keyword: Antenna Feed

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Design and Implementation of a Stacked Microstrip Antenna with Broad Bandwidth for ISM Band (ISM 대역에서의 적층 구조를 이용한 광대역 마이크로스트립 안테나 설계 및 제작)

  • Kim, Min-Joon;Lee, Jong-Woo
    • Proceedings of the Korea Electromagnetic Engineering Society Conference
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    • 2003.11a
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    • pp.437-441
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    • 2003
  • The major drawback of the classical microstrip patch antennas Is their narrow band characteristic from 1% to 5%. In this paper, to improve this drawback, we designed the antenna with stacked structure having one drive patch connected with feed line and four identical radiation patches. Resonance is achieved by adjust ing coupling area between one drive patch and four identical radiation patches and changing the size of drive patch or radial ion patches. Used substrate is FR4(${\epsilon}_r$=4.6 and t=1.6mm) and designed center frequency is 2.45GHz. The designed antenna has a wide bandwidth of 380Mhz form 2.333GHz to 2.713GHz(about 15.5%) including ISM band from 2.4GHz to 2.4835GHz.

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A Design of EMI / EMC Crossed Log-Periodic Dipole Antenna (EMI/EMC 측정용 십자형 대수 주기 다이폴 안테나의 설계 및 해석)

  • 김진태;최학근;진년강
    • The Proceeding of the Korean Institute of Electromagnetic Engineering and Science
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    • v.5 no.3
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    • pp.48-58
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    • 1994
  • In this paper, a CLPDA (Crossed Log-Periodic Dipole Antenna) for EMI / EMC Measurement is presented, and is analyzed by Combining the moment method and the transmission line theory. The CLPDA has a broaddband characteristic. It is so important to achieve a impedance matching over op- erating frequency range that Twin-boom method is used at feed point. Here, the current distribution, input admittance, radiation pattern and gain are calculated. In practice CLPDA is fabricated. Calculated result for radiation pattern and gain are very closed to measured result.

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Design of a Monopulse Feed for $2{\times}2$ Array Feed horn Antenna ($2{\times}2$배열 피드혼 안테나용 모노 펄스 피드 설계)

  • Kim, Won-Sub
    • Journal of the Institute of Electronics Engineers of Korea TC
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    • v.45 no.1
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    • pp.91-96
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    • 2008
  • In this paper, a monopulse fled for three mode $2{\times}2$ array feed horn antenna was designed. Gain of single feed was 8.25dB. Increasing property of gain and rectangular waveguide and reflection of free space is decreased because it has structure extending to electric plane at connected part from transformation to free space. When fled port1 and port2 is placed vertically and thickness of aperture hem is reduced, isolation is satisfied with property of lower -25dB. Also, at higher frequency, it is confirmed that isolation is improved. Combination of electric field occurs less influence because port1 and port3 is placed horizontally and distribution of electric field is connected to parallel. However, because of combination of electric field, it is more improved from 2dB to 6dB than isolation of port1 and port2. Direct combination occult less effect at port1 and port4 than effect of port2 and port3, it is lower -35dB.

Design of Diversity Vehicle Antennas for FM Radio Reception (FM 라디오 수신을 위한 차량용 다이버시티 안테나 설계)

  • Ahn, Seung-Beom;Noh, Young-Ho;Oh, Jung-Hoon;Choo, Ho-Sung
    • The Journal of Korean Institute of Electromagnetic Engineering and Science
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    • v.20 no.8
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    • pp.761-769
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    • 2009
  • In this paper, we report on the channel capacity and diversity gain of the vehicle on-glass antenna for FM radio reception. The correlation coefficient and channel capacity were obtained using the simulated 3D radiation pattern of each antenna and the Rayleigh channel model for urban environment. To examine the channel capacity we used two antennas which are a simple straight antenna and L-type antenna. Then we observed the available channel capacity by varying the position of feeds and the shape of the L-type antenna. The sample antenna, which has a maximum feed distance with different polarizations, was built and the receiving performance was measured in the weak FM field area. From the results we confirmed that the distance between the feeds should be placed as far as possible for the high channel capacity. If the distance between the feeds are greater than a certain threshold value than the polarizations of the two antennas are getting more important for determining the channel capacity.

4×1 Wideband Phase Array Antenna at S-Band (S-대역 4×1 광대역 위상배열안테나에 관한 연구)

  • Yoon, Nanae;Ha-van, Nam;Seo, Chulhun
    • The Journal of Korean Institute of Electromagnetic Engineering and Science
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    • v.29 no.1
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    • pp.20-23
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    • 2018
  • In this work, an aperture-coupled patch array antenna with wideband characteristics was designed and arrayed in a $4{\times}1$ S-band. The designed antenna structure consists of two layers, and it possesses wideband characteristics achieved using coupling between the two layers. The first layer is comprised of four radiation patches and the second layer has an aperture and a ground plane. The antenna structure possesses 15 % wideband characteristics and the center frequency is at 3.2 GHz. A phase shifter was added to the array antenna to enable beam steering. The proposed phase array antenna was fabricated and measured. Our proposed design enables beam steering up to $35^{\circ}$.

Modified Monopole Antenna for Multi resonance Wideband (다중 공진 광대역 수정된 모노폴안테나)

  • Cho, Tea-Il;Bum, Byung-Gyun;Lim, Seung-Woo
    • The Journal of the Korea institute of electronic communication sciences
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    • v.3 no.2
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    • pp.53-57
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    • 2008
  • This paper designed and fabricated the printed dual monopole antenna with CPW feeder for PCS and UWB(Ultra-Wide Band) band. In this paper, modified dual monopole antenna is proposed transform conventional monopole antenna to get dual band frequency. The dual monopole antennas have dual band, broad bandwidth and omni-directional radiation patterns, as it is the conventional monopole antenna. As one monopole operated a stub to match feed line with antenna, we are obtained easy an ideal impedance matching. It is increased band width of impedance. The antenna bandwidth is about 1350MHz (1.69~2.04[GHz]z]) at 1st resonance frequency, 2,670MHz (4.33~6[GHz]) at 2nd, resonance frequency, and, 3,980MHz (6.1~10.08[GHz]) at 3th resonance frequency on VSWR$$\leq_-$$2, and then we can be got not only 1.75~1.87 [GHz] PCS band but also, UWB band.

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RFID Reader Antenna with Hilbert Curve Fractal Structure over Partially Grounded Plane (Hilbert 커브 프랙탈 구조를 이용한 부분 접지된 RFID 리더 안테나)

  • Lim, Jung-Hyun;Kang, Bong-Soo;Jwa, Jeong-Woo;Kim, Heung-Soo;Yang, Doo-Yeong
    • The Journal of the Korea Contents Association
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    • v.7 no.4
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    • pp.30-38
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    • 2007
  • In this paper, UHF band RFID reader antenna using filbert curve fractal structure and adding the partially grounded plane at the bottom of antenna, which has a resonant frequency at 910MHz, is proposed. Input impedance of antenna is matched with the feed line of 50ohm by varying the length and width of line segment making up the antenna, and by moving the position of via hole. The gain and directivity of antenna is enhanced as varying the dimension of the partially grounded plane and adding the line segment. The size of fabricated antenna is $68mm\times68mm$. The impedance band width(VSWR<2) is $882\sim942MHz$. The return loss and the gain of fabricated antenna are -18.2dB, 5.3dBi at 910MHz.

A Design and Fabrication of Microstrip Patch Antenna for PCS band and IMT-2000 band (PCS 대역과 IMT-2000 대역 겸용 마이크로스트립 패치 안테나의 설계 및 제작)

  • Lee, Won-Hui;Choi, Kyung-Sik;Hur, Jung
    • Journal of the Institute of Electronics Engineers of Korea TC
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    • v.39 no.2
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    • pp.108-116
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    • 2002
  • In this paper, to improve bandwidth of microstrip antenna, we discussed the patch structure using dual patch and probe feed. To provide PCS service and IMT-2000 service simultaneous, a microstrip patch antenna needs impedance bandwidth of 22%. We propose wide-band microstrip path antenna without complexity. To analyze characteristics of microstrip patch antenna, we used Ensemble of commercial software. The microstrip patch antenna was designed, fabricated, and tuned. The result was that 500 ㎒(25.5%) of impedance bandwidth for VSWR 2,430 ㎒(21.9%) of impedance bandwidth for VSWR 1.5. The microstrip patch antenna has side lobe of -14 dB. The front to back ratio is 20 dB overall. The measured gain of the microstrip patch antenna is 5.2 dBi.

Dual-band Open Loop Antenna using Strip-conductor for the RFID and Wireless LAN Application (RFID 및 무선 LAN용 이중대역 도체스트립 개방루프 안테나)

  • Lim, Jung-Hyun;Kang, Bong-Soo;Kim, Heung-Soo;Jwa, Jeong-Woo;Yang, Doo-Yeong
    • Journal of the Institute of Electronics Engineers of Korea TC
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    • v.44 no.3 s.357
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    • pp.98-104
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    • 2007
  • In this paper, the dual-band open loop antenna using a strip conductor for the RFID reader and Wireless LAN Application, which has a resonant frequency at 910MHz and 2.45 GHz, is proposed. Input impedance of antenna is matched with the feed line of 50 ohm by varying the length and width of sip conductor making up the antenna. The gain and directivity of antenna is enhanced as tuning the length of strip, and as also grooving the teeth shapes on the strip conductor. The size of fabricated antenna is $75mm\times100mm$. The return loss and the gain of fabricated antenna are -11.92 dB, 3.02 dBi at 910 MHz and -21.31 dB, 4.08 dBi at 2.45 GHz, respectively.

Study on the Array type antenna of 1.8GHz (1.8GHz 대역용 배열 구조 안테나 연구)

  • Park, Yong-Wook
    • The Journal of the Korea institute of electronic communication sciences
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    • v.11 no.10
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    • pp.929-934
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    • 2016
  • In this paper, we studied the design and fabrication of array antenna at around 1.8 GHz band. To improve of frequency properties of antenna, single feed microstrip patch antenna was simulated by HFSS(High Frequency Structure Simulator). A $1{\times}2$ array antenna of 1.8 GHz for LTE band was designed and fabricated by photolithography on an FR4 substrate (dielectric constant of 4.4 and thickness of 0.8 mm). The fabricated antenna was analyzed by network analyzer. The measured results agree well with the simulations, which confirmed the validity of this study. The fabricated $1{\times}2$ array antenna showed a center frequency, the minimum return loss and impedance were 1.82GHz, -30.5dB, and $49.6{\Omega}$ respectively.