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A 10 GHz Monolithic Filter Based on Stripline Resonators with a Split Conductor

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Abstract

The monolithic design of a compact bandpass filter X-band is made on the technology of multilayered printed circuit boards. Quarter-wave stripline resonators of the filter have two conductors divided by a layer of prepreg having low parameters that bond together the design. This eliminates the influence of the prepreg on the characteristics of the devices, ensuring good repeatability of filters in mass production. To increase the high-frequency stopband of the filter, one of the conductors of each resonator is cut in half by a transverse slit. The constructive sizes of the device were obtained by parametric synthesis using the electrodynamic analysis of its 3D model. The experimental data of the five-order filter are in good agreement with the electromagnetic simulation of filter of the 3D model. The experimental device has a central frequency of the passband of 10 GHz and a fractional bandwidth of 5.7%, and its dimensions and weight are 18.0 × 5.4 × 2.1 mm3 and 0.5 g. The important advantage of the developed design is the possibility of its installation on the board using the surface mounting method.

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REFERENCES

  1. B. A. Belyaev, A. M. Serzhantov, A. A. Leksikov, and Y. F. Bal’va, IEEE Microwave Wireless Compon. Lett., No. 9, 579 (2015).

  2. B. A. Belyaev, A. M. Serzhantov, A. A. Leksikov, Y. F. Bal’va, and An. A. Leksikov, Microwave Opt. Technol. Lett. 59, 2212 (2017).

    Article  Google Scholar 

  3. I. B. Vendik, D. V. Kholodnyak, and A. V. Simin, Kompon. Tekhnol., No. 5, 190 (2005).

  4. D. Kholodnyak, Ya. Kolmakov, I. Vendik, J. F. Trabert, J. Mueller, K.-H. Druee, and M. A. Hein, in Proceedings of the 38th European Microwave Conference, Amsterdam (2008), p. 211.

  5. Y. Imanaka, Multilayered Low Temperature Cofired Ceramics (LTCC) Technology (Springer Science, New York, 2005).

    Google Scholar 

  6. C.-H. Wu, Y.-S. Lin, C.-H. Wang, and C.-H. Chen, in Proceedings of the European Microwave Conference, Munich, 2007, p. 532.

  7. Z.-C. Hao, W. Ding, and W. Hong, IEEE Trans. Microwave Theory Tech. 64, 1775 (2016).

    Article  ADS  Google Scholar 

  8. G. F. Zargano, V. V. Zemlyakov, and S. V. Krutiev, Fiz. Voln. Protses. Radiotekh. Sist. 16 (2), 87 (2013).

    Google Scholar 

  9. M. Bozzi, A. Georgiadis, and K. Wu, IET Microwave Antennas Prop. 5, 909 (2011).

    Article  Google Scholar 

  10. C. Du, K. Ma, T. Feng, and S. Mou, in Proceedings of the IEEE International Conference on Microwave and Millimeter Wave Technology (2016), p. 317.

  11. K. Aliqab and J. Hong, IEEE Trans. Microwave Theory Tech. 67, 1023 (2019).

    Article  ADS  Google Scholar 

  12. M. Cariou, B. Potelon, C. Quendo, S. Cadiou, E. Schlaffer, W. Pessl, and A. L. Fevre, IEEE Trans. Microwave Theory Technol. 65, 496 (2017).

    Article  ADS  Google Scholar 

  13. Y. Chu, K. Ma, Y. Wang, and F. Meng, IEEE Microwave Wireless Compon. Lett. 29, 192 (2019).

    Article  Google Scholar 

  14. B. A. Belyaev, A. M. Serzhantov, An. A. Leksikov, Ya. F. Bal’va, and R. G. Galeev, Tech. Phys. Lett. 47, 645 (2021).

    Article  CAS  ADS  Google Scholar 

  15. B. A. Belyaev, A. M. Serzhantov, An. A. Leksikov, Ya. F. Bal’va, and R. G. Galeev, Ural Radio Eng. J. 5 (1), 21 (2021).

    Google Scholar 

  16. A. A. Leksikov, Extended Abstract of Doctoral Dissertation (Kirenskii Inst. Phys. Sib. Branch of RAS, Krasnoyarsk, 2022).

  17. B. A. Belyaev, A. M. Serzhantov, and Ya. F. Bal’va, J. Commun. Technol. Electron. 53, 406 (2008).

    Article  Google Scholar 

  18. B. A. Belyaev, S. V. Matveev, V. V. Tyurnev, and Yu. G. Shikhov, Elektron. Tekh., Ser.: SVCh Tekh., No. 4 (464), 20 (1994).

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Funding

This work was carried out within the framework of Agreement no. 470 of August 30, 2022, between the Institute of Physics, Siberian Branch, Russian Academy of Sciences; the Regional Science Foundation; and JSC NPP Radiosvyaz, for a competition of scientific, technical, and innovative projects in the interests of the first climate Scientific and Educational Center “Yenisei Siberia.”

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Correspondence to B. A. Belyaev.

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Govorun, I.V., Belyaev, B.A., Zav’yalov, Y.B. et al. A 10 GHz Monolithic Filter Based on Stripline Resonators with a Split Conductor. Dokl. Phys. 68, 434–439 (2023). https://doi.org/10.1134/S1028335823120030

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  • DOI: https://doi.org/10.1134/S1028335823120030

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