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  • 學位論文

以摺式多模諧振器含互補開口環型諧振器與指叉饋入結構設計具多陷波特性超寬頻帶通濾波器

Multi-notched Ultra-wideband Bandpass Filter Design Using FMMR, CSRR and Inter-digital Couples Configurations

指導教授 : 江青瓚副教授
共同指導教授 : 劉智群教授

摘要


本文設計一組以摺式多模諧振器內含互補開口環型諧振器與指叉饋入結構之具多頻陷 波特性之超寬頻帶通濾波器及一組串接結構濾波器。這二組濾波器具有,較寬的頻寬(3.1 to 9.8 GHz/2.93 to 8.71) 其頻寬百分比為 101 與 101 %,有低的介入損耗(1.56/0.33dB)、 高抑制位準(-16/-26dB)、在中心頻率為 6.45/5.78GHz 頻段等響應特性。運用互補開口環 型諧振器與指叉饋入結構,能在超寬頻通帶內產生雙陷波/四陷波頻段,以阻斷干擾信 號。調整互補開口環型諧振器與指叉饋入結構的長度比例,得到雙陷波頻段為 5.75 與 8.28 GHz,以及四陷波頻段為 3.5、4.2、5.75 與 8.28 GHz。調整的範圍,雙陷波頻段為 5.75 到 8.28 GHz,四陷波頻段為 3.65 到 8.48 GHz。這是一簡單方式,來設計與調控雙/ 四陷波頻段

並列摘要


The folded multiple-mode resonator (FMMR) and inter-digital couple, and the cascaded structure are introduced for ultra-wideband bandpass (UWB) filter design In addition the FMMR with complementary split ring resonator (CSRR) and inter-digital couple, and the cascaded structure are proposed for UWB filter design in this thesis. The wider bandwidth (3.1 to 9.8 GHz and 2.93 to 8.71 GHz) with FBW = 101 and 101 %, lower insertion loss (1.56 and 0.33 dB), and higher rejection level (-15 and -26 dB) of UWB band at central frequency f0 = 6.45 and 5.78 GHz of the inter-digital coupled CSRR FMMR and the cascaded structure are presented respectively. By using the CSRR and inter-digital couple, dual/quad-notched bands can exist in the UWB passband for blocking the interference signals. Adjusting the size factor of CSRR and inter-digital couple, the wide tuning ranges of notched frequencies included the dual-notched band of 5.75 and 8.28 GHz and the quad-notched band of 3.87, 5.59, 5.84 and 7.70 GHz are achieved. The wide tuning ranges of dual-notched frequencies cover from 4.7 GHz to 9.7 GHz and ranges of quad- notched frequencies present from 3.65 GHz to 8.48 GHz. It is a simple way to design and control the dual-/quad-notched bands

並列關鍵字

UWB filter dual/quad-notched FMMR CSRR

參考文獻


[1] Federal Communications Commission, “Revision of Part 15 of the Commission’s Rules Regarding UltraWideband Transmission System First Report and Order,” Tech. Rep. ET Docket 98-153, FCC02-48, FCC, Feb. 2002.
[2] G. R. Aiello and G. D. Rogerson, Ultra-wideband wireless systems, IEEE Microw. Mag., vol. 4, no. 2, 2003, pp. 36–47.
[3] W. Menzel, L. Zhu, K.Wu and F. Bögelsack, On the design of novel compact broad-band planar filters, IEEE Trans. Microw. Theory Tech., vol. 51, no. 2, 2003, pp. 364–370.
[4] L. Zhu, S. Sun and W. Menzel, Ultra-wideband bandpass filters using multiple-mode resonator, IEEE Microw. Wireless Compon. Lett., vol. 15, no. 11, 2005, pp. 796–798.
[5] H. Shaman and J. S. Hong, Input and output cross-coupled wideband bandpass filter, IEEE Trans. Microw. Theory Tech., vol. 55, no. 12, 2007, pp. 2562–2568.

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