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DUAL-WIDEBAND BANDPASS FILTERS WITH EXTENDED STOPBAND BASED ON COUPLED-LINE AND COUPLED THREE-LINE RESONATORS
Author(s) -
Jen-Tsai Kuo,
ChunYu Fan,
Shao-Chan Tang
Publication year - 2012
Publication title -
electromagnetic waves
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.437
H-Index - 89
eISSN - 1559-8985
pISSN - 1070-4698
DOI - 10.2528/pier11120103
Subject(s) - stopband , band pass filter , resonator , wideband , dual (grammatical number) , line (geometry) , prototype filter , physics , electronic engineering , filter (signal processing) , computer science , optoelectronics , optics , engineering , mathematics , low pass filter , art , geometry , literature , computer vision
Coupled-line and coupled three-line resonators are pro- posed to design dual-wideband bandpass fllters. Compared with the shorted and open stubs shunt at the same locations of the main line, in addition to saving the circuit area, these resonators provide alter- native ways to the design of dual-wideband fllters, with larger possible bandwidths and difierent frequency ratio of the two center passbands. The geometric parameters of the coupled-line and the coupled three- line structures are determined by deriving their equivalent circuits to a shunt open stub in parallel connection with a shunt shorted stub. To extend the upper stopband, a cross-shaped admittance inverter is devised to play the role of the 90-degree transmission line section at the center frequency and to create transmission zeros at the spurious passbands, so that the upper stopband of the fllter can be extended. It is a quarter-wave section with two open stubs of unequal lengths shunt at its center. For demonstration, two dual-wideband bandpass fllters operating at 900/1575MHz and 900/2000MHz are fabricated and measured. Measured results of the experimental circuits show good agreement with simulated responses.

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