• Title/Summary/Keyword: parasitic patch

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Design of a Wideband Antipodal Vivaldi Antenna with an Asymmetric Parasitic Patch

  • Bang, Jihoon;Lee, Juneseok;Choi, Jaehoon
    • Journal of electromagnetic engineering and science
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    • v.18 no.1
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    • pp.29-34
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    • 2018
  • An antipodal Vivaldi antenna with a compact parasitic patch to overcome radiation performance degradations in the high-frequency band is proposed. For this purpose, a double asymmetric trapezoidal parasitic patch is designed and added to the aperture of an antipodal Vivaldi antenna. The patch is designed to efficiently focus the beam toward the end-fire direction at high frequencies by utilizing field coupling between the main radiating patch and the inserted parasitic patch. As a result, this technique considerably improves the gain and stability of radiation patterns at high frequencies. The proposed antenna has a peak gain greater than 9 dBi over the frequency range of 6-26.5 GHz.

Design of Miniaturized Broadband Parasitic Patch Antenna Using Reduced Size Main Patch with U-Shaped Parasitic Patches (폭이 좁아진 주 패치와 U자 형태의 기생 패치를 이용한 소형화된 광대역 기생 패치 안테나 설계)

  • Wi, Sang-Hyuk;Kim, Woo-Tae;Hong, Young-Pyo;Yuk, Jai-Rim;Yook, Jong-Gwan
    • The Journal of Korean Institute of Electromagnetic Engineering and Science
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    • v.18 no.4 s.119
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    • pp.389-397
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    • 2007
  • This paper proposes miniaturized broadband parasitic patch antenna. The proposed antenna consists of a probe fed reduced size main patch and U-shaped parasitic patches. The parasitic patches are incorporated to the radiating edges of the main patch to miniaturize the antenna size. The broadband impedance matching can be achieved by either E-plane or H-plane electromagnetic coupling between main patch and parasitic elements. The size of radiating elements is $18{\times}17.6\;mm^2$ and the overall dimension of designed antenna with substrate and ground plane is $25{\times}30{\times}4\;mm^3$. The fabricated antenna on a FR4 substrate shows two resonant frequencies(5.12 GHz and 6.08 GHz) with 27.3 %(1.5 GHz) fractional bandwidth at 5.5 GHz center frequency. The calculated and measured radiation patterns are almost similar to conventional patch antenna.

Wideband Stacked Microstrip Antenna with Parasitic Patches for 800MHz Band (기생패치를 이용한 800MHz 대역 광대역 적층 마이크로스트립 안테나)

  • Kim, GunKyun;Lee, Jong-Ig;Ko, Jin-hyun;Rhee, Seung-Yeop
    • Proceedings of the Korean Institute of Information and Commucation Sciences Conference
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    • 2016.05a
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    • pp.83-84
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    • 2016
  • A wideband stacked patch antenna with parasitic elements, rectangular and triangle shaped patches, is proposed. Two different shaped parasitic elements are placed in the above of main rectangular microstrip patch antenna in order to achieve wide bandwidth for 860 MHz band. Coupling between the main patch and parasitic patches is realized by thick air gap. The gap and locations of parasitic patches are found to be the main factor of the wideband impedance matching. The proposed antenna is designed on a ground plane with small size of $119mm{\times}109mm$ for application of compact transceivers. And the impedance bandwidth of the antenna should satisfied CDMA band to the 780MHz~890MHz.

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Design of wideband microstrip antennas using parasitic element (기생소자를 이용한 광대역 마이크로스트립 안테나의 설계)

  • 김태완;김정기
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.21 no.5
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    • pp.1294-1303
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    • 1996
  • In this paper, the microstrip anntenna with broad bandwidth is designed using parasitic element. In the designed cofiguration, parasitic element of the same resonating length but different width which is coupled to the nonradiating edge of a rectangular patch antenna. The driven element aloe is fed and the other part is operated as parasitic element. So the different patchs are resonating at differnt frequencies and this multiple resonance increase the bandwidth. The overall size of the antenna is not increased by adding parasitic element to a driven patch. Compared to the available wideband microstrip antennas, the designed antenna structure is bery compact. A theoretical explanation of the rectangular patch antenna coupled with prarsitic is analyzed by extending the theory of coupled microstrip lines. The theoretical and experimental results for a patch coupled with a single parasitic are presented.

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A circular microstrip antenna with a parasitic element (비여진 소자를 추가한 원형 마이크로스트립 안테나)

  • 구인모;이상설
    • Journal of the Korean Institute of Telematics and Electronics D
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    • v.34D no.1
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    • pp.1-7
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    • 1997
  • In this paper, several parasitic elements are added to the circular microstrip antenna in order to increase its bandwidth. Three kinds of parasitic elements such as cone, circular plate, and ring types are applied and input VSWRs, radiation patterns, and input impedances are measured. The optimal sizes of each parasitic element are obtianed and the variations of the bandwidth according to the height from the patch are also measured. In thid case of the ring type, the optimum bandwidth is obtained at the height of 10mm from the patch to the parasitic element. In the cases of conical and circular plate types, the maximum bandwidth is obtained at the hight of 45mm form the patch to the parasitic elements.

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Design of a Compact Broadband Stacked Microstrip Patch Antenna (광대역 적층 마이크로스트립 패치 안테나의 소형화 설계)

  • Kim, GunKyun;Rhee, Seung-Yeop;Yeo, Junho;Lee, Jong-Ig;Kim, Ohn
    • Proceedings of the Korean Institute of Information and Commucation Sciences Conference
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    • 2016.10a
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    • pp.72-73
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    • 2016
  • In this paper, we studied a method for miniaturizing a broadband stacked patch antenna structure which is widely used for bandwidth improvement. Main patch is a rectangular microstrip patch antenna fed by a 50-ohm microstrip line, and a parasitic patch is laid above the main patch. The size of the main patch is designed to be resonated near the center frequency of the desired frequency band. Then parasitic patch longer than main patch is placed above the main patch. The distance between two patches might be adjusted so as to achieve impedance matching using a shunt open stub. The shunt matching stub is inserted underneath the parasitic patch and so it does not require additional space, which enables the proposed antenna structure to be advantageous in miniaturizing antenna. The effects of the various parameters on the antenna performance are examined, and we introduced the design procedure for the proposed antenna to operate in the frequency range of 2.3-2.7 GHz.

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Wideband Stacked Microstrip Antenna with Rectangular and Triangular Parasitic Patches for 860MHz Band (직사각형 및 삼각형 기생패치를 이용한 860MHz 대역 광대역 적층 마이크로스트립 안테나)

  • Ko, Jin-Hyun;Kim, Gun-Kyun;Rhee, Seung-Yeop;Lee, Jong-Ig
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.20 no.5
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    • pp.874-879
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    • 2016
  • A wideband stacked patch antenna with parasitic elements, rectangular and triangle shaped patches, is proposed. Two different shaped parasitic elements are placed in the above of main rectangular microstrip patch antenna in order to achieve wide bandwidth for 860 MHz band. Coupling between the main patch and parasitic patches is realized by thick air gap. The gap and locations of parasitic patches are found to be the main factor of the wideband impedance matching. The proposed antenna is designed and fabricated on a ground plane with small size of $119mm{\times}109mm$ for application of compact transceivers. The fabricated antenna on an FR4 substrate shows that the minimum measured return loss is below -11.68dB at 824 MHz and an impedance band of 818~919 MHz(11.7%) at 10dB return loss level. The measured radiation patterns are similar to those of a conventional patch antenna with maximum gain of 2.11 dBi at 824 MHz.

Design of PIFA with a parasitic element for PDA terminal (기생소자를 갖는 PDA 단말기용 PIFA 설계)

  • Kim, Yong-Ho;Lee, Hong-Min
    • Proceedings of the Korea Electromagnetic Engineering Society Conference
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    • 2003.11a
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    • pp.511-514
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    • 2003
  • In this paper, describes the design of PIFA for PDA which has parasitic patch to expand the impedance bandwidth and miniaturization technique to consider the radiation pattern. To expand the impedance bandwidth, generated resonant frequency of parasitic patch is different from that of main patch. To miniaturize the physical dimension, using the folded edge and rectangular slot. The obtained impedance bandwidth is 9.4% ($2.29GHz{\sim}2.515GHz$) at VSWR${\leqq}$2 and antenna gain is 2dBi within the operating frequency.

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Design of an Internal Wideband DVB-H Antenna Using Parasitic Patch (기생 패치를 이용한 휴대기기 내장형 DVB-H 광대역 안테나 설계)

  • Lee, Young-Ki;Seo, Dong-Hyun;Jeon, Seung-Gil;Choi, Jae-Hoon
    • Proceedings of the IEEK Conference
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    • 2007.07a
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    • pp.157-158
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    • 2007
  • In this paper, an internal wideband DVB-H antenna using parasitic patch is proposed. The antenna consists of rectangular patch with system ground and shorting plate. The -10 dB impedance bandwidth of proposed antenna is about 530 MHz ($470{\sim}1000\;MHz$). Radiation patterns are nearly omni-directional for operating frequency. It is suitable for DVB-H application.

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Design of a Tilted Beam Microstrip Patch Array Antenna using Parasitic Patch Coupling Characteristics (기생 패치의 결합 특성을 이용한 빔 틸팅 마이크로스트립 패치 배열 안테나 설계)

  • 하재권;박동철
    • The Journal of Korean Institute of Electromagnetic Engineering and Science
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    • v.14 no.2
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    • pp.202-208
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    • 2003
  • In this paper, we proposed a microstrip patch array antenna for DBS reception which had high gain and high tilted angle through mutual coupling driver patch to parasitic patch in H-plane edge and broadside direction in different layers. It was designed and fabricated in 16$\times$8 array by using low cost polyester based copper-clad laminate and foam instead of high cost dielectric substrate. It had gain of 22.9 dBi, beamwidth of 4.6$^{\circ}$, and tilted angle from broadside direction of 43.9$^{\circ}$.