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基于开路T型结构的小型化超宽阻带滤波器设计

朱轶智 张晓娟 方广有

朱轶智, 张晓娟, 方广有. 基于开路T型结构的小型化超宽阻带滤波器设计[J]. 电子与信息学报, 2010, 32(9): 2282-2286. doi: 10.3724/SP.J.1146.2009.01021
引用本文: 朱轶智, 张晓娟, 方广有. 基于开路T型结构的小型化超宽阻带滤波器设计[J]. 电子与信息学报, 2010, 32(9): 2282-2286. doi: 10.3724/SP.J.1146.2009.01021
Zhu Yi-Zhi, Zhang Xiao-Juan, Fang Guang-You. Design for Miniature Filter with Ultra-wide Stopband Based on Open-Stub T-shaped Structure[J]. Journal of Electronics & Information Technology, 2010, 32(9): 2282-2286. doi: 10.3724/SP.J.1146.2009.01021
Citation: Zhu Yi-Zhi, Zhang Xiao-Juan, Fang Guang-You. Design for Miniature Filter with Ultra-wide Stopband Based on Open-Stub T-shaped Structure[J]. Journal of Electronics & Information Technology, 2010, 32(9): 2282-2286. doi: 10.3724/SP.J.1146.2009.01021

基于开路T型结构的小型化超宽阻带滤波器设计

doi: 10.3724/SP.J.1146.2009.01021
基金项目: 

国家863计划项目(2009AA12ZB2)资助课题

Design for Miniature Filter with Ultra-wide Stopband Based on Open-Stub T-shaped Structure

  • 摘要: 传统滤波器由于寄生通带的存在,其高频阻带性能较差。随着超宽带雷达系统和超宽带通信系统的发展,小型化宽阻带的滤波器已成为一项紧迫的技术课题。该文论述了一种普适性的基于开路T型结构的小型化超宽阻带滤波器结构,这种滤波器和传统滤波器相比,结构极为紧凑,5倍基频范围内的寄生通带均被抑制,而通带性能保持良好。基于此结构实际制作了一个截止频率为2.9 GHz的低通滤波器,测量得到的通带内平均插入损耗仅0.67 dB,带内平均驻波比为1.33,过渡带陡峭,40 dB矩形系数仅1.096,而所测得的阻带从3.23 GHz到10.30 GHz之内谐波抑制大于36 dB,从10.30 GHz到15 GHz之内谐波抑制大于27 dB;该滤波器的长度仅为传统的同类型滤波器的长度的37.1%,面积大大减小。仿真和测量结果表明该类型滤波器同时满足了小型化和宽阻带的性能需求。
  • Hong J and Lancaster M J. Microstrip Filters for RF/ Microwave Applications. New York: John Wiley Sons, Inc, 2001, Chapter 3-4.[2]Pan H Y, Wu H W, and Weng M H. Design of the compact SIR-based bandpass filter with a wide stopband[J].Microwave and Optical Technology Letters.2008, 50(4):948-952[3]Mondal P and Mandal M K. Design of dual-band bandpass filters using stub-loaded open-loop resonators[J].IEEE Transactions on Microwave Theory and Techniques.2008, 56(1):150-155[4]Ren M, Chen D, and Cheng C. A novel wideband bandpass filter using a cross-shaped multiple-mode resonator[J].IEEE Microwave and Wireless Components Letters.2008, 18(1):13-15[5]Kuo J T, Hsu W H, and Huang W T. Parallel coupled microstrip filters with suppression of harmonic response[J].IEEE Microwave and Wireless Components Letters.2002, 12(10):383-385[6]Lopetegi T, Laso M, Falcone F, Martin F, Bonache J, Garcia J, Perez-Cuevas L, Sorolla M, and Guglielmi M. Microstrip wiggly-linebandpass filters with multispurious rejection[J].IEEE Microwave and Wireless Components Letters.2004, 14(11):531-533[7]Garcia-Garcia J, Bonache J, and Martin F. Application of electromagnetic bandgaps to the design of ultra-wide bandpass filters with good out-of-band performance[J].IEEE Transactions on Microwave Theory and Techniques.2006, 54(12):4136-4140[8]龙泉, 杜正伟, 刘濮鲲. 一种新颖U形缺陷地结构宽阻带低通滤波器. 微波学报, 2008, 24(4): 64-67.Long Quan, Du Zheng-wei, and Liu Pu-kun. A novel low-pass filter of wide stop-band with U-shaped defected ground structure. Journal of Microwaves, 2008, 24(4): 64-67.[9]Wong S W and Zhu L. Implementation of compact UWB bandpass filter with a notch-band[J].IEEE Microwave and Wireless Components Letters.2008, 18(1):10-12[10]Tang C W and Hsu Y K. A microstrip bandpass filter with ultra-wide stopband[J].IEEE Transactions on Microwave Theory and Techniques.2008, 56(6):1468-1472[11]Quendo C, Rius E, Person C, and Ney M. Integration of optimized low-pass filters in a bandpass filter for out-of- band improvement[J].IEEE Transactions on Microwave Theory and Techniques.2001, 49(12):2376-2383[12]Manchec A, Quendo C, Rius E, Person C, and Favennec J F. Synthesis of dual behavior resonator (DBR) filters with integrated low-pass structures for spurious responses suppression. IEEE Transactions on Microwave Theory and Techniques, 2006, 16(1): 4-6.[13]Tu W H and Chang Kai. Compact second harmonic- suppressed bandstop and bandpass filters using open stubs[J].IEEE Transactions on Microwave Theory and Techniques.2006, 54(6):2497-2502[14]Zhu Y, Zhang X, and Fang G. General design of compact T-shaped line filter with ultra-wide stopband. Progress in Electromagnetics Research Symposium 2009, Moscow, 2009: 1555-1558.
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出版历程
  • 收稿日期:  2009-07-17
  • 修回日期:  2010-01-18
  • 刊出日期:  2010-09-19

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