• Title/Summary/Keyword: Ferrite Phase Shifter

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Design of Nonreciprocal Twin-toroidal Ferrite Phase Shifter (비가역성 쌍토로이드 페라이트 변위기 설계)

  • 이기오;김영범;박동철;신용수;김윤명
    • The Journal of Korean Institute of Electromagnetic Engineering and Science
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    • v.7 no.1
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    • pp.43-52
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    • 1996
  • Nonreciprocal twin-toroid ferrite phase shifter is designed, fabricated, and tested. ABCD matrix method is used to design the phase shifter and to compute its optimum dimen- sions. Quarter-wave two-section impedance matching transformers are utilized in order to match the impedance of the empty guide to that of the ferrite-loaded guide. Driving circuit controls the current needed to drive the phase shifter. Measured insertion loss and VSWR characteristics within the operaring band(9.1GHz ~ 9.5GHz) are less than 1.2dB and 1.15, respectively. After temperature compensation technique is appied to the phase shifter, the measured phase error of the phase shifter is less than $\pm4$ between $-10^{\circ}C\;and\;+60^{\circ}C$.

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Analog Ferrite Phase Shifter Using Substrate Integrated Waveguide (기판 집적 도파관을 이용한 아날로그 페라이트 위상 천이기)

  • Yim, Myung-Gyu;Byun, Jin-Do;Lee, Hai-Young
    • The Journal of Korean Institute of Electromagnetic Engineering and Science
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    • v.22 no.4
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    • pp.470-480
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    • 2011
  • Analog ferrite phase shifters based on rectangular waveguides which are used as component of passive phased array system have high power handling capability, but it is heavy and has high cost to fabricate. In this paper, we propose an analog ferrite phase shifter using substrate integrated waveguide(SIW), which has low cost and is easy to fabricate because it uses printed circuit board(PCB) process. The proposed structure is fabricated by using centeral dielectric material removal for inserting a ferrite bar. The measured results show that the proposed structure has not only $5.1^{\circ}$/mm phase variation but also return loss variation under 12.9 dB. Therefore, it is expected that the proposed phase shifter can plays an role to reduce weight and to has low cost on the phased array system.

Design and Implementation of Flux-Driven Waveguide Ferrite Phase Shifters (자속밀도 제어형 페라이트 도파관 변위기 설계 및 제작)

  • 김동석;박동철;이용희;김윤명
    • The Proceeding of the Korean Institute of Electromagnetic Engineering and Science
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    • v.3 no.1
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    • pp.3-10
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    • 1992
  • Flux-drive waveguide phase shifter is designed by twin-slab model. Measured differential phase shifts are smaller than the theoretical values by 8-9 percents. Measured insertion loss and VSWR of the phase shifter using TT73-2200 ferite are less than 0.45dB and 1.25 respectively, within pass band. The phase shifter using double-setup transformer shows wider bandwidth characteristics. Finally the reduced-height waveguide phase shifter using TT3-2900 ferrite shows very efficient suppression of higher-oreder modes.

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Higher Order Mode Analysis in Ferrite Waveguide Phase Shifter (페라이트 도파관 이상기내에서의 고차 모드 해석)

  • Lee, Byoong-Nam;Park, Dong-Chul;Yu, Sang-Won
    • Proceedings of the KIEE Conference
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    • 1988.07a
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    • pp.422-425
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    • 1988
  • The structure consisting of an E-plane dielectric slab partially filling a rectangular waveguide is examined with attention on those higher order mode propagation characteristics that are relevant to the design of nonreciprocal remanence ferrite phase shifters. The mechanisms for the elimination of $LSE_{11}$, $LSM_{11}$, $LSE_{12}$ modes are introduced. Experimental verification of elimination of higher order mode is shown in the form of insertion loss measurements.

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Analysis of Higher Order Modes of Waveguide Latching Phase Shifter (도파관 래칭 이상기의 고차 모드 해석)

  • 신동만;윤상원;박동철
    • Journal of the Korean Institute of Telematics and Electronics
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    • v.26 no.8
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    • pp.1145-1151
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    • 1989
  • New method to calculate the characteristics of the dominant and higher order modes of waveguide latching phase shifters are presented. Due to the tensor permeability, E and H fields inside the ferrite are expanded in terms of the LSE and LSM eigenmodes of the dielectric-slab-loaded waveguide. The equivalent coupled transmission line equations on the transverse plane are derived to obtain the dispersion characteristics and the E and H field distributions. Numerical results at X-band are compared with those published previously. The derived field distributions can be used to suppress the higher order modes of the latching phase shifters, so that the phase shift from the dominant mode only contributes the performance of the phase shifters.

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