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Erschienen in: Wireless Personal Communications 4/2021

27.03.2021

Microstrip Dual-narrowband Bandpass Filter with Independent Passbands

verfasst von: Masoud Najafi, Ali Reza Hazeri

Erschienen in: Wireless Personal Communications | Ausgabe 4/2021

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Abstract

In this article, a novel compact microstrip dual-narrowband bandpass filter (DNBPF) is presented with wide and high rejection levels in the stopbands. The location of each passband is independently controllable/tunable/selectable. The filter structure is made up of three-coupled-asymmetrical transmission lines, open-ended stubs and direct-transmission lines. Employing these lines can generate two narrowband passband filters. By combining these passband filters, the proposed DNBPF is configured. The proposed DNBPF is investigated. The center frequency of the first and second passband are 5.745 and 6.489 GHz, respectively. Also, the proposed DNBPF presents the fractional 3-dB bandwidth of the first and second passband 3.66 and 2.33%, respectively. It has the flattest group delay variations in comparison with previously published papers due to the design freedom. |S12|< -30 dB is from 10.1 to 19.25 GHz in the last stopband. The occupied area of the proposed DNBPF is \(0.225\lambda_{g} \times 0.11\lambda_{g}\), where \(\lambda_{g}\) is the guided wavelength at the first center frequency.

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Literatur
1.
Zurück zum Zitat Faraji, T., Nosrati, M., & Hazeri, A. (2011). A novel miniaturized dual-band power divider using microstrip coupled transmission lines. Microwave and optical technology letters, 53(3), 676–679.CrossRef Faraji, T., Nosrati, M., & Hazeri, A. (2011). A novel miniaturized dual-band power divider using microstrip coupled transmission lines. Microwave and optical technology letters, 53(3), 676–679.CrossRef
2.
Zurück zum Zitat Hazeri, A. R. (2011). A new miniaturization and the nth harmonic suppression of Wilkinson power. IEICE transactions on electronics, 94(2), 215–219.CrossRef Hazeri, A. R. (2011). A new miniaturization and the nth harmonic suppression of Wilkinson power. IEICE transactions on electronics, 94(2), 215–219.CrossRef
3.
Zurück zum Zitat Hazeri, A. R. (2012). An ultra wideband Wilkinson power divider. International Journal of Electronics, 99(4), 575–584.CrossRef Hazeri, A. R. (2012). An ultra wideband Wilkinson power divider. International Journal of Electronics, 99(4), 575–584.CrossRef
4.
Zurück zum Zitat Hazeri, A. R., & Faraji, T. (2011). Miniaturisation and harmonic suppression of the branch-line hybrid coupler. International Journal of Electronics, 98(12), 1699–1710.CrossRef Hazeri, A. R., & Faraji, T. (2011). Miniaturisation and harmonic suppression of the branch-line hybrid coupler. International Journal of Electronics, 98(12), 1699–1710.CrossRef
5.
Zurück zum Zitat Hazeri, A. R., Kashaninia, A., Faraji, T., & Arani, M. F. . (2011). Miniaturization and harmonic suppression of the branch-line coupler based on radial stubs. IEICE Electronics Express, 8(10), 736–741.CrossRef Hazeri, A. R., Kashaninia, A., Faraji, T., & Arani, M. F. . (2011). Miniaturization and harmonic suppression of the branch-line coupler based on radial stubs. IEICE Electronics Express, 8(10), 736–741.CrossRef
6.
Zurück zum Zitat Hazeri, A. R. (2011). Compact dual-band open-stub bandstop filter with suppression of spurious passbands. International Journal of Electronics, 98(5), 679–683.CrossRef Hazeri, A. R. (2011). Compact dual-band open-stub bandstop filter with suppression of spurious passbands. International Journal of Electronics, 98(5), 679–683.CrossRef
7.
Zurück zum Zitat Faraji, T., & Hazeri, A. R. (2012). Microstrip dual-band bandstop filter to suppress DGS, DMB, GPS, UTMTS, WCDMA, WIBRO and WLAN bands. Microwave and optical technology letters, 54(4), 854–856.CrossRef Faraji, T., & Hazeri, A. R. (2012). Microstrip dual-band bandstop filter to suppress DGS, DMB, GPS, UTMTS, WCDMA, WIBRO and WLAN bands. Microwave and optical technology letters, 54(4), 854–856.CrossRef
8.
Zurück zum Zitat Deng, J., Hou, S., Zhao, L., & Guo, L. (2018). A reconfigurable filtering antenna with integrated bandpass filters for UWB/WLAN applications. IEEE Transactions on Antennas and Propagation, 66(1), 401–404.CrossRef Deng, J., Hou, S., Zhao, L., & Guo, L. (2018). A reconfigurable filtering antenna with integrated bandpass filters for UWB/WLAN applications. IEEE Transactions on Antennas and Propagation, 66(1), 401–404.CrossRef
9.
Zurück zum Zitat Ghaderi, A., Golestanifar, A., & Shama, F. (2018). Microstrip bandpass filters using coupled feed lines for third and fourth generation communications. AEU-International Journal of Electronics and Communications, 86, 195–201.CrossRef Ghaderi, A., Golestanifar, A., & Shama, F. (2018). Microstrip bandpass filters using coupled feed lines for third and fourth generation communications. AEU-International Journal of Electronics and Communications, 86, 195–201.CrossRef
10.
Zurück zum Zitat Killamsetty, V. K., & Mukherjee, B. (2018). Compact wideband bandpass filter using quad mode resonator. AEU-International Journal of Electronics and Communications, 87, 54–59.CrossRef Killamsetty, V. K., & Mukherjee, B. (2018). Compact wideband bandpass filter using quad mode resonator. AEU-International Journal of Electronics and Communications, 87, 54–59.CrossRef
11.
Zurück zum Zitat Shama, F., Hayati, M., & Ekhteraei, M. (2018). Compact microstrip lowpass filter using meandered unequal T-shaped resonator with ultra-wide rejection band. AEU-International Journal of Electronics and Communications, 85, 78–83.CrossRef Shama, F., Hayati, M., & Ekhteraei, M. (2018). Compact microstrip lowpass filter using meandered unequal T-shaped resonator with ultra-wide rejection band. AEU-International Journal of Electronics and Communications, 85, 78–83.CrossRef
12.
Zurück zum Zitat Xia, X., Chen, F., Cheng, X., & Deng, X. (2018). A compact ultra‐wideband bandpass filter with good selectivity based on interdigital coupled‐line. International Journal of RF and Microwave Computer‐Aided Engineering. e21419. Xia, X., Chen, F., Cheng, X., & Deng, X. (2018). A compact ultra‐wideband bandpass filter with good selectivity based on interdigital coupled‐line. International Journal of RF and Microwave Computer‐Aided Engineering. e21419.
14.
Zurück zum Zitat Beiki, T., & Hosseinipanah, M. (2018). Harmonic suppression in short-circuited stub bandpass filter by means of a new miniaturized bandstop filter. Analog Integrated Circuits and Signal Processing, 96(3), 589–596.CrossRef Beiki, T., & Hosseinipanah, M. (2018). Harmonic suppression in short-circuited stub bandpass filter by means of a new miniaturized bandstop filter. Analog Integrated Circuits and Signal Processing, 96(3), 589–596.CrossRef
15.
Zurück zum Zitat Nova, O. A., Bohórquez, J. C., Peña, N. M., Bridges, G. E., Shafai, L., & Shafai, C. (2012). Design procedure of a filter-antenna module implemented in substrate integrated waveguide technology. Analog Integrated Circuits and Signal Processing, 73(3), 895–907.CrossRef Nova, O. A., Bohórquez, J. C., Peña, N. M., Bridges, G. E., Shafai, L., & Shafai, C. (2012). Design procedure of a filter-antenna module implemented in substrate integrated waveguide technology. Analog Integrated Circuits and Signal Processing, 73(3), 895–907.CrossRef
16.
Zurück zum Zitat Hasan, A., Hannan, A., & Nadeem, A. E. (2016). Improved microstrip hairpinline bandpass filter using via ground holes and capacitive gap. Analog Integrated Circuits and Signal Processing, 86(2), 267–274.CrossRef Hasan, A., Hannan, A., & Nadeem, A. E. (2016). Improved microstrip hairpinline bandpass filter using via ground holes and capacitive gap. Analog Integrated Circuits and Signal Processing, 86(2), 267–274.CrossRef
17.
Zurück zum Zitat Imani, M. A., Shama, F., Alirezapoori, M., & Ekhteraei, M. (2018). Miniaturized microstrip lowpass filter using cylindrical-shaped resonators for integrated applications. Analog Integrated Circuits and Signal Processing, 95(2), 223–229.CrossRef Imani, M. A., Shama, F., Alirezapoori, M., & Ekhteraei, M. (2018). Miniaturized microstrip lowpass filter using cylindrical-shaped resonators for integrated applications. Analog Integrated Circuits and Signal Processing, 95(2), 223–229.CrossRef
18.
Zurück zum Zitat Danaeian, M., Zarezadeh, E., & Ghayoumi-Zadeh, H. (2018). A compact and high performance dual-band bandpass filter based on unbalanced composite right/left-handed transmission lines for WLANs applications. Analog Integrated Circuits and Signal Processing, 94(3), 469–479.CrossRef Danaeian, M., Zarezadeh, E., & Ghayoumi-Zadeh, H. (2018). A compact and high performance dual-band bandpass filter based on unbalanced composite right/left-handed transmission lines for WLANs applications. Analog Integrated Circuits and Signal Processing, 94(3), 469–479.CrossRef
19.
Zurück zum Zitat Liu, H., Ren, B., Guan, X., Lei, J., & Li, S. (2013). Compact dual-band bandpass filter using quadruple-mode square ring loaded resonator (SRLR). IEEE microwave and wireless components letters, 23(4), 181–183.CrossRef Liu, H., Ren, B., Guan, X., Lei, J., & Li, S. (2013). Compact dual-band bandpass filter using quadruple-mode square ring loaded resonator (SRLR). IEEE microwave and wireless components letters, 23(4), 181–183.CrossRef
20.
Zurück zum Zitat Mo, Y., Song, K., Tao, P., & Fan, Y. (2013). Miniaturised dual-band bandpass filter using modified SIR. Electronics Letters, 49(14), 888–890.CrossRef Mo, Y., Song, K., Tao, P., & Fan, Y. (2013). Miniaturised dual-band bandpass filter using modified SIR. Electronics Letters, 49(14), 888–890.CrossRef
21.
Zurück zum Zitat Yang, S., Lin, L., Chen, J., Deng, K., & Liang, C.-H. (2014). Design of compact dual-band bandpass filter using dual-mode stepped-impedance stub resonators. Electronics Letters, 50(8), 611–613.CrossRef Yang, S., Lin, L., Chen, J., Deng, K., & Liang, C.-H. (2014). Design of compact dual-band bandpass filter using dual-mode stepped-impedance stub resonators. Electronics Letters, 50(8), 611–613.CrossRef
22.
Zurück zum Zitat Duan, Q., Song, K., Chen, F., & Fan, Y. (2015). Compact dual-band bandpass filter using simply hybrid structures. Electronics Letters, 51(16), 1265–1266.CrossRef Duan, Q., Song, K., Chen, F., & Fan, Y. (2015). Compact dual-band bandpass filter using simply hybrid structures. Electronics Letters, 51(16), 1265–1266.CrossRef
23.
Zurück zum Zitat Hammed, R. T. (2015). Miniaturized dual-band bandpass filter using E-shape microstrip structure. AEU-International Journal of Electronics and Communications, 69(11), 1667–1671.CrossRef Hammed, R. T. (2015). Miniaturized dual-band bandpass filter using E-shape microstrip structure. AEU-International Journal of Electronics and Communications, 69(11), 1667–1671.CrossRef
24.
Zurück zum Zitat Xu, S., Ma, K., Meng, F., & Yeo, K. S. (2015). Novel defected ground structure and two-side loading scheme for miniaturized dual-band SIW bandpass filter designs. IEEE microwave and wireless components letters, 25(4), 217–219.CrossRef Xu, S., Ma, K., Meng, F., & Yeo, K. S. (2015). Novel defected ground structure and two-side loading scheme for miniaturized dual-band SIW bandpass filter designs. IEEE microwave and wireless components letters, 25(4), 217–219.CrossRef
25.
Zurück zum Zitat Alqaisy, M. A., Chakrabraty, C., Ali, J., Alhawari, A., & Saeidi, T. (2016). Reconfigurable Bandwidth and Tunable Dual-Band Bandpass Filter Design for Ultra-Wideband (UWB) Applications. Electromagnetics, 36(6), 366–378.CrossRef Alqaisy, M. A., Chakrabraty, C., Ali, J., Alhawari, A., & Saeidi, T. (2016). Reconfigurable Bandwidth and Tunable Dual-Band Bandpass Filter Design for Ultra-Wideband (UWB) Applications. Electromagnetics, 36(6), 366–378.CrossRef
26.
Zurück zum Zitat Liu, S., Xu, J., & Xu, Z.-T. (2016). Compact dual-band bandpass filters using complementary split-ring resonators with closely spaced passbands. Electronics Letters, 52(15), 1312–1314.CrossRef Liu, S., Xu, J., & Xu, Z.-T. (2016). Compact dual-band bandpass filters using complementary split-ring resonators with closely spaced passbands. Electronics Letters, 52(15), 1312–1314.CrossRef
27.
Zurück zum Zitat Ghaderi, A., Golestanifar, A., & Shama, F. (2017). Design of a compact microstrip tunable dual-band bandpass filter. AEU-International Journal of Electronics and Communications, 82, 391–396.CrossRef Ghaderi, A., Golestanifar, A., & Shama, F. (2017). Design of a compact microstrip tunable dual-band bandpass filter. AEU-International Journal of Electronics and Communications, 82, 391–396.CrossRef
28.
Zurück zum Zitat Malherbe, J. A. G. (2017). An asymmetrical dual band bandpass filter. Microwave and optical technology letters, 59(1), 163–168.MathSciNetCrossRef Malherbe, J. A. G. (2017). An asymmetrical dual band bandpass filter. Microwave and optical technology letters, 59(1), 163–168.MathSciNetCrossRef
29.
Zurück zum Zitat Noori, L., & Rezaei, A. (2017). Design of microstrip wide stopband quad-band bandpass filters for multi-service communication systems. AEU-International Journal of Electronics and Communications, 81, 136–142.CrossRef Noori, L., & Rezaei, A. (2017). Design of microstrip wide stopband quad-band bandpass filters for multi-service communication systems. AEU-International Journal of Electronics and Communications, 81, 136–142.CrossRef
30.
Zurück zum Zitat Min, X., & Zhang, H. (2017). Compact dual-band bandstop filter using folded resonator. AEU-International Journal of Electronics and Communications, 82, 520–525.CrossRef Min, X., & Zhang, H. (2017). Compact dual-band bandstop filter using folded resonator. AEU-International Journal of Electronics and Communications, 82, 520–525.CrossRef
31.
Zurück zum Zitat Chen, G., & Ding, Y. (2018). Compact Microstrip UWB Bandpass Filter with Quad Notched Bands Using Quad-Mode Stepped Impedance Resonato. Progress In Electromagnetics Research, 76, 127–132.CrossRef Chen, G., & Ding, Y. (2018). Compact Microstrip UWB Bandpass Filter with Quad Notched Bands Using Quad-Mode Stepped Impedance Resonato. Progress In Electromagnetics Research, 76, 127–132.CrossRef
32.
Zurück zum Zitat Zhang, S., & Zhu, L. (2014). Fully canonical dual-band bandpass filter with λ/4 stepped impedance resonators. Electronics Letters, 50(3), 192–194.CrossRef Zhang, S., & Zhu, L. (2014). Fully canonical dual-band bandpass filter with λ/4 stepped impedance resonators. Electronics Letters, 50(3), 192–194.CrossRef
33.
Zurück zum Zitat Moitra, S., Dey, R., & Bhowmik, P. S. (2019). Design and band coalition of dual band microstrip filter using DGS, coupled line structures and series inductive metallic vias. Analog Integrated Circuits and Signal Processing. 1–12. Moitra, S., Dey, R., & Bhowmik, P. S. (2019). Design and band coalition of dual band microstrip filter using DGS, coupled line structures and series inductive metallic vias. Analog Integrated Circuits and Signal Processing. 1–12.
34.
Zurück zum Zitat Shriram, S. Y., Kumar, K. V. P., & Karthikeyan, S. (2018). Compact dual-wideband bandpass filter for wireless applications. AEU-International Journal of Electronics and Communications, 95, 69–72.CrossRef Shriram, S. Y., Kumar, K. V. P., & Karthikeyan, S. (2018). Compact dual-wideband bandpass filter for wireless applications. AEU-International Journal of Electronics and Communications, 95, 69–72.CrossRef
35.
Zurück zum Zitat Khani, S., Danaie, M., & Rezaei, P. (2019). Miniaturized microstrip dual-band bandpass filter with wide upper stop-band bandwidth. Analog Integrated Circuits and Signal Processing, 98(2), 367–376.CrossRef Khani, S., Danaie, M., & Rezaei, P. (2019). Miniaturized microstrip dual-band bandpass filter with wide upper stop-band bandwidth. Analog Integrated Circuits and Signal Processing, 98(2), 367–376.CrossRef
36.
Zurück zum Zitat Lalbakhsh, A., Ghaderi, A., Mohyuddin, W., Simorangkir, R. B., Bayat-Makou, N., Ahmad, M. S., et al. (2020). A Compact C-Band Bandpass Filter with an Adjustable Dual-Band Suitable for Satellite Communication Systems. Electronics, 9(7), 1088.CrossRef Lalbakhsh, A., Ghaderi, A., Mohyuddin, W., Simorangkir, R. B., Bayat-Makou, N., Ahmad, M. S., et al. (2020). A Compact C-Band Bandpass Filter with an Adjustable Dual-Band Suitable for Satellite Communication Systems. Electronics, 9(7), 1088.CrossRef
37.
Zurück zum Zitat Gómez-García, R., Yang, L., Muñoz-Ferreras, J.-M., & Psychogiou, D. (2019). Selectivity-enhancement technique for stepped-impedance-resonator dual-passband filters. IEEE microwave and wireless components letters, 29(7), 453–455.CrossRef Gómez-García, R., Yang, L., Muñoz-Ferreras, J.-M., & Psychogiou, D. (2019). Selectivity-enhancement technique for stepped-impedance-resonator dual-passband filters. IEEE microwave and wireless components letters, 29(7), 453–455.CrossRef
38.
Zurück zum Zitat Chen, C.-Y., Hsu, C.-Y., & Chuang, H.-R. (2006). Design of miniature planar dual-band filter using dual-feeding structures and embedded resonators. IEEE microwave and wireless components letters, 16(12), 669–671.CrossRef Chen, C.-Y., Hsu, C.-Y., & Chuang, H.-R. (2006). Design of miniature planar dual-band filter using dual-feeding structures and embedded resonators. IEEE microwave and wireless components letters, 16(12), 669–671.CrossRef
39.
Zurück zum Zitat Chang, W.-S., & Chang, C.-Y. (2011). Analytical design of microstrip short-circuit terminated stepped-impedance resonator dual-band filters. IEEE Transactions on Microwave Theory and Techniques, 59(7), 1730–1739.CrossRef Chang, W.-S., & Chang, C.-Y. (2011). Analytical design of microstrip short-circuit terminated stepped-impedance resonator dual-band filters. IEEE Transactions on Microwave Theory and Techniques, 59(7), 1730–1739.CrossRef
40.
Zurück zum Zitat Cao, Y., Fang, Y., Luo, X.-M., Zhu, Z.-J., & Ding, S. (2019). A compact dual-band bandpass filter for 2.4/5.2 GHz WLAN application. IEICE Electronics Express. 16.20190553. Cao, Y., Fang, Y., Luo, X.-M., Zhu, Z.-J., & Ding, S. (2019). A compact dual-band bandpass filter for 2.4/5.2 GHz WLAN application. IEICE Electronics Express. 16.20190553.
41.
Zurück zum Zitat Jones, E. M. T. (1956). Coupled-strip-transmission-line filters and directional couplers. IRE Transactions on Microwave Theory and Techniques, 4(2), 75–81.CrossRef Jones, E. M. T. (1956). Coupled-strip-transmission-line filters and directional couplers. IRE Transactions on Microwave Theory and Techniques, 4(2), 75–81.CrossRef
42.
Zurück zum Zitat Tripathi, V. K. (1977). On the analysis of symmetrical three-line microstrip circuits. IEEE Transactions on Microwave Theory and Techniques, 25(9), 726–729.CrossRef Tripathi, V. K. (1977). On the analysis of symmetrical three-line microstrip circuits. IEEE Transactions on Microwave Theory and Techniques, 25(9), 726–729.CrossRef
43.
Zurück zum Zitat Nguyen, C., & Chang, K. (1985). On the analysis and design of spurline bandstop filters. IEEE Transactions on Microwave Theory and Techniques, 33(12), 1416–1421.CrossRef Nguyen, C., & Chang, K. (1985). On the analysis and design of spurline bandstop filters. IEEE Transactions on Microwave Theory and Techniques, 33(12), 1416–1421.CrossRef
44.
Zurück zum Zitat Nguyen, C. (1990). On the analysis of parallel coupled transmission lines in an inhomogeneous medium. Microwave and optical technology letters, 3(9), 308–310.CrossRef Nguyen, C. (1990). On the analysis of parallel coupled transmission lines in an inhomogeneous medium. Microwave and optical technology letters, 3(9), 308–310.CrossRef
45.
Zurück zum Zitat Hong, J.-S. G., & Lancaster, M. J. (2004). Microstrip filters for RF/microwave applications (Vol. 167): John Wiley & Sons. Hong, J.-S. G., & Lancaster, M. J. (2004). Microstrip filters for RF/microwave applications (Vol. 167): John Wiley & Sons.
Metadaten
Titel
Microstrip Dual-narrowband Bandpass Filter with Independent Passbands
verfasst von
Masoud Najafi
Ali Reza Hazeri
Publikationsdatum
27.03.2021
Verlag
Springer US
Erschienen in
Wireless Personal Communications / Ausgabe 4/2021
Print ISSN: 0929-6212
Elektronische ISSN: 1572-834X
DOI
https://doi.org/10.1007/s11277-021-08417-z

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