• Title/Summary/Keyword: folded antenna

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Design of a PCB-Embedded Antenna for Bluetooth Applications (블루투스용 PCB 임베디드 안테나 설계)

  • Kim, Yun-Mi;Park, Myoung-Shil;Chyung, Ji-Young;Jung, Hae-Mi;Ahn, Bierng-Cherl
    • Journal of Korea Society of Industrial Information Systems
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    • v.11 no.5
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    • pp.98-104
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    • 2006
  • In this parer, proposed a Miniature inverted F Antenna for Bluetooth applications using folded structure and confirm it through producing and measurement. The proposed antenna as PIFA is optimized the impedance matching and the radiation pattern by positioning of feed line and short line. This antenna is designed with Microwave Studio presented CST and the optimized antenna structure is fabricated. The optimized miniature antenna size is 17.3 * 6 * 0.8 mm, the measured return loss bandwidth is 220MHz at 2.45GHz, the radiation pattern is quasi omni, and the gain is -1 dBi. these results are similar to the simulation data. It is comparatively appropriate for Bluetooth system.

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Resonant Folded Dipole Antennas for Continuous-Wave Terahertz Photomixer (연속파 테라헤르츠 포토믹수를 위한 폴디드 공진 안테나)

  • Moon, Kyung-Sik;Park, Hong-Kyu;Kim, Jeong-Hoi;Jung, Eun-A;Lee, Kyun-Gin;Han, Hae-Wook
    • Proceedings of the IEEK Conference
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    • 2006.06a
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    • pp.181-182
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    • 2006
  • Photoconductive three-wire folded dipole antennas for terahertz photomixers have been developed. The folded antennas are characterized by a free space time-domain measurement technique, and the measured data are in good agreement with the simulation results. The folded dipole antennas have much higher antenna resistance than other resonant dipole antennas, implying that they can be used for higher output power of THz photomixers.

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Multiple Antenna System for Next Generation Mobile Communication (차세대 이동 통신용 다중 안테나 시스템)

  • Han, Min-Seok;Choi, Jae-Hoon
    • The Journal of Korean Institute of Electromagnetic Engineering and Science
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    • v.21 no.6
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    • pp.660-669
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    • 2010
  • In this paper, a multiple antenna system for next generation mobile applications is proposed. The proposed MIMO antenna consists of two parallel folded monopole antennas with the length of 100 mm and spacing of 6 mm and a decoupling network which locates at the top side of a mobile handset. In order to improve the isolation characteristic at the LTE band 13, a decoupling network was added between the two antenna elements placed close to each other. The decoupling network, consisting of two transmission lines, a shunt reactive component and common ground line, is simple and compact. To obtain the wide bandwidth characteristic, an wide folded patch structure generating the strong coupling between feeding and shorting lines through the slit is used at the bottom side of a mobile handset. Also, the performance of a multiple antenna system composed of three antenna elements is analyzed.

A Simple Planar Heptaband Antenna with a Coupling Feed for 4G Mobile Applications

  • Hong, Youngtaek;Tak, Jinpil;Choi, Jaehoon
    • Journal of electromagnetic engineering and science
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    • v.15 no.4
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    • pp.239-244
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    • 2015
  • A simple planar heptaband antenna with a coupling feed for 4G mobile applications is proposed. This antenna consists of a folded monopole and a feed strip line on the top plane and an L-shaped line with a coupling plate on the bottom plane. The antenna provides a wide bandwidth to cover the LTE/GSM/UMTS heptaband operation. The measured 6-dB return loss bandwidth is 152 MHz (820-972 MHz) in the lowfrequency band and 1,150 MHz (1,600-2,750 MHz) in the high-frequency band. The overall dimensions of the proposed antenna are $60mm{\times}105mm{\times}1.2mm$.

A Wideband Circularly Polarized Pinwheel-Shaped Planar Monopole Antenna for Wireless Applications

  • Lee, Wang-Sang;Oh, Kyoung-Sub;Yu, Jong-Won
    • Journal of electromagnetic engineering and science
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    • v.12 no.2
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    • pp.155-160
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    • 2012
  • A wideband circularly polarized pinwheel-shaped planar monopole antenna fed by a wideband feeding network is presented in this paper. The proposed antenna is formed by four wideband planar monopole antenna elements with aquadruple feeding network in order to improve the performance of circular polarization. Additionally, the antenna, which is introduced here, has a high gain in the z axis direction because of its folded antenna structure. The attractive characteristics of the proposed antenna are the wide impedance bandwidth of 87.3 % (1 GHz to 2.55 GHz), the 3 dB axial ratio (AR) bandwidth of 92.3 % (1.05 GHz to 2.85 GHz), and the maximum gain within the 3 dB AR bandwidth is about 8.24 dBic.

Multiple Meander Strip Monopole Antenna with Broadband Characteristic (광대역 특성의 다중 미앤더 스트립 모노폴 안테나)

  • 이윤호;정종호;박익모
    • The Journal of Korean Institute of Electromagnetic Engineering and Science
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    • v.15 no.1
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    • pp.89-95
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    • 2004
  • In this paper, we proposed a multiple meander strip monopole antenna. Using meander strip structure, we could broaden the impedance bandwidth and reduce the antenna height. The proposed antenna has broad bandwidth, from 2.9 ㎓ to 10.85 ㎓, for VSWR $\leq$ 2 and has vertically polarized omnidirectional conical beam radiation pattern, which is suitable for UWB wireless systems.

Study on a Folded Diple Antenna parallel to Conductive Pole (도전성지주에 평행한 포울디드.다이폴안테나에 관하여)

  • 박정기
    • Journal of the Korean Institute of Telematics and Electronics
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    • v.5 no.4
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    • pp.9-19
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    • 1968
  • In this paper, I introduced the theoretical formulas for calcuating the input impedance of a folded dipole antenna which is held in parallel with the conductive supporter. Through the comparision of the above impedance formulas with the imput impedance formulas of a half wave dipole antenna which is parallel to the conductive supporter, it was found that the former can be made in identically same form as the latter, if some conditions are satisfied. The equivalent conditions mentioned above are derived also and the manufacturing of a vertically polarized omni-drectional antenna is apossible by the use of above equivalent conditions, because a half wave dipole antenna in parallel with a conductive supporter is already illustrated to become an omni-directional vertical polarization antenna. Some experimental data are shown together.

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Design of Antenna for Intelligent Detection Sensor (지능형 주차검지센서용 안테나 개발)

  • Choi, Yoon-Seon;Hong, Ji-Hun;Woo, Jong-Myung
    • The Journal of The Korea Institute of Intelligent Transport Systems
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    • v.19 no.2
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    • pp.104-109
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    • 2020
  • In this paper, we proposed a miniaturized folded inverted F antenna with ISM-band (center frequency : 447 MHz) for mounting in intelligent parking sensor. First, to mount the antenna in the intelligent parking sensor module (72 mm × 70 mm) with limited size, a folded inverted F antenna was designed at low frequency 447 MHz (wavelength λ : 670 mm) of the ISM-band. As a result, it resonates in the ISM band and obtains suitable characteristic with a -10 dB bandwidth of 13 MHz (2.9%). In addition, the H-plane pattern by the vertical and horizontal elements represents the omni-directional patterns from which the null point is removed, and the E-plane has directivity in a specific direction. Finally, it is suitable as and antenna for vehicle management in parking lots.

Design and Implementation of Internal Multi-Band Monopole Antenna for Mobile Phones

  • Yang, Woon-Geun;Cai, Ling Zhi;Yang, Cheol-Yong
    • Journal of IKEEE
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    • v.15 no.4
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    • pp.339-344
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    • 2011
  • In this paper, we proposed an internal multi-band monopole antenna for mobile phone that can be used for smart phones. The proposed antenna has a small volume of $38{\times}8.5{\times}5\;mm^3$, ground size is $100{\times}60\;mm^2$, and covers the GSM900 (Global System for Mobile communications : 880-960 MHz), DCS (Digital Communications System : 1710-1880 MHz), K-PCS (Korea-Personal Communications Service : 1750-1870 MHz), US-PCS (US Personal Communications Service : 1850-1990 MHz), Bluetooth (2400-2483 MHz), Wibro (2300-2390 MHz) and WLAN (Wireless Local Area Network : 2400-2483.5 MHz) bands. The measured peak gains of the implemented antenna are 1.15 dBi at 920 MHz, 3.58 dBi at 1795 MHz, 3.46 dBi at 1810 MHz, 2.91 dBi at 1920 MHz, 5.18 dBi at 2345 MHz, 3.37 dBi at 2442 MHz.