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Yazar "Gorur A." seçeneğine göre listele

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    Design of a new balun bandpass filter with single-band balance and dual-band filtering characteristics
    (John Wiley and Sons Inc., 2019) Gorur A.K.; Ozturk Ozdemir P.; Karpuz C.; Gorur A.
    In this article, a new type of balun bandpass filter with single-band balance and dual-band filtering function is presented. For this purpose, a novel compact dual-mode open loop resonator with short-circuited stubs and interdigital capacitors is proposed. Two identical resonators are coupled to two output ports in order to obtain 180° phase difference between the output ports. By means of the changes in the short-circuited stubs and interdigital capacitors, control of the passbands at two output ports can be achieved. In addition, as the short-circuited stubs are located at the same wave traveling paths, phase difference cannot be obtained in the first passband and only the second passband has balun function. The designed balun bandpass filter was fabricated and tested for the experimental verifications. Phase difference and magnitude imbalance have been measured within 180° ± 2° and 0.5 dB, respectively. The measured results exhibit a very good agreement with the predicted results. © 2019 Wiley Periodicals, Inc.
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    Design of dual wideband bandpass filter using stub loaded multi-mode resonators
    (John Wiley and Sons Inc., 2018) Turkeli A.; Gorur A.K.; Sahin E.G.; Gorur A.
    In this paper, a novel dual wideband microstrip bandpass filter is proposed. The designed filter is constructed by two different stub loaded resonators located at the upper and bottom sides of the coupling line. The coupling transmission line is also connected to input and output (IO) ports. The upper resonator creates a wide passband, whereas the bottom resonator is used to create two transmission zeros in the passband. Thus, a wide passband can be divided into dual wide passbands. The bottom resonator is also utilized to improve the insertion and return losses in the passband. The designed filter is fabricated and tested in a very good agreement with the simulated results. The measured fractional bandwidths (FBWs) of the passbands are 44.6% and 24.2% at the center frequencies of 3.4 GHz and 5.51 GHz, respectively. The measured insertion losses in the passbands are 0.51 dB and 1.13 dB. © 2018 Wiley Periodicals, Inc.

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