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Switched-line network with digital phase shifter

  • Hussein Thary Khamees ORCID logo EMAIL logo , Assad H. Thary Al-Ghrairi ORCID logo and Ali Abdulwahhab Mohammed ORCID logo
Published/Copyright: November 9, 2021

Abstract

This article studies a six-bit digital phase shifter and its compatible design through different physiognomies. Furthermore, the communication circuits are applied based on modern knowledge by application. The study started with the initial values of 5.625° as the digital phase shifter is programmed discrete and advanced to a 64-step size. Moreover, the properties of bandwidth are computed by 6.44–10.85 GHz. (C-X band) is related to the phase shifter around the frequency, so the full improvement of 66 dB of the phase shifter is 7 dB. Besides, the phase is changing in array antenna and secondhand in optimal Design. Finally, the study discusses dissimilar kinds of digital phase shifters, to study the parameters that affects the design in future cases.


Corresponding author: Hussein Thary Khamees, Department of Laser and Optoelectronic Engineering, College of Engineering, Al-Nahrain University, Baghdad, Iraq, E-mail:

  1. Author contribution: All the authors have accepted responsibility for the entire content of this submitted manuscript and approved submission.

  2. Research funding: None declared.

  3. Conflict of interest statement: The authors declare no conflicts of interest regarding this article.

References

[1] B. Van Brunt Lucroy, “EW Engineering, ©1982,” in Applied ECM, vol. 2, 3rd ed. Boston, EW Engineering Inc, 1982, pp. 1–632.Search in Google Scholar

[2] N. D. Doddamani, A. V. Nandi, and H. Chandra, “Design and implementation of SPDT switch, 6 bit digital attenuator, 6-bit digital phase shifter for L-band T/R module using 0.7 μm GaAs MMIC technology,” IETE J. Res., vol. 53, no. 6, pp. 527–532, 2007. https://doi.org/10.1080/03772063.2007.10876169.Search in Google Scholar

[3] F. Ellinger, H. Jckel, and W. Bchtold, “Varactor loaded transmission-line phase shifter at c-band using lumped elements,” IEEE Trans. Microw. Theor. Tech., vol. 51, no. 4, pp. 1135–1140, 2003. https://doi.org/10.1109/tmtt.2003.809670.Search in Google Scholar

[4] C. Moye, G. Sakamoto, and M. Brando, “A compact broadband, six-bit mimic phasor with integrated digital drivers,” in IEEE Microwave and Millimeter-Wave Monolithic Circuits Symposium, 1990, Digest of Papers, 1990, pp. 123–126.10.1109/MCS.1990.110954Search in Google Scholar

[5] D. Jagyasi, K. Ray, S. Chaudhary, and S. Krishan, “Six bit digital phase shifter using lumped network for ST radar,” Int. J. Comput. Appl., vol. 975, no. 8887, pp. 5–11, 2013.Search in Google Scholar

[6] G. Klein and D. Leanard, “The digilater, a new broadband microwave frequency translator,” IEEE Trans. MTT, vol. 15, no. 2, pp. 172–179, 1987.10.1109/TMTT.1967.1126408Search in Google Scholar

[7] H. T. Khamees, A. H. T. Al-Ghrairi, K. H. Suffer, and H. H. Thary, “Structure constant analyzing of SLG beam Kolmogorov in atmospheric slant path propagation,” AIP Conf. Proc., vol. 2129, 2019, Art no. 020063. https://doi.org/10.1063/1.5118071.Search in Google Scholar

[8] R. V. Graner, Microwave Diode Control, Washington, D.C., Artech House, 1996.Search in Google Scholar

[9] J. F. White, “Diode phase shifters for array antennas,” in IEEE Transactions on Microwave Theory and Techniques, 1974, pp. 658–674.10.1109/TMTT.1974.1128309Search in Google Scholar

[10] H. T. Khamees, “Atmospheric propagation model and affecting on laser beam propagation via free space,” in Frontiers in optics, OSA Technical Digest, United States, Optical Society of America, 2017. Available at: https://doi.org/10.1364/fio.2017.jtu3a.11.Search in Google Scholar

[11] Z. Wang, B. Yan, R. M. Xu, and Y. Guo, “Design of a Ku band six-bit phase shifter using periodically loaded-line and switched-line with loaded-line,” Prog. Electromagn. Res., vol. 76, pp. 369–379, 2007. https://doi.org/10.2528/pier07071904.Search in Google Scholar

[12] A. A. Mohammed, L. Yu, M. Al-Kali, and E. E. B. Adam, “BER analysis and evaluation for different channel models in wireless cooperation networks based OFDM system,” in 2014 Fourth International Conference on Communication Systems and Network Technologies, IEEE, 2014, pp. 326–330.10.1109/CSNT.2014.72Search in Google Scholar

[13] H. Th. Khamees, “Design advanced algorithm of the single dimension for resolving the electrostatic problem by using the MoM method,” IOP Conf. Ser. Mater. Sci. Eng., vol. 518, no. 5, p. 052015, 2019. https://doi.org/10.1088/1757-899x/518/5/052015.Search in Google Scholar

[14] B. M. Schiffman, “A new class of broadband microwave 90 degree phase shifters,” IEEE Trans. MTT, vol. 6, no. 2, pp. 232–237, 1978.10.1109/TMTT.1958.1124543Search in Google Scholar

[15] A. A. Mohammed and H. A. Anwer, “A new method encryption and decryption,” Webology, vol. 18, no. 1, pp. 20–31, 2021. https://doi.org/10.14704/web/v18i1/web18002.Search in Google Scholar

[16] K. Schmidt, Phase-Shift Network Analysis and Optimization, Newington, QEX, 1994, pp. 17–23.Search in Google Scholar

[17] A. A. Mohammed and D. J. Kadhim, “Analysis of threats and security issues evaluation in mobile P2P networks”, Int. J. Electr. Comput. Eng., vol. 10, no. 6, pp. 6435–6445, 2020. https://doi.org/10.11591/ijece.v10i6.pp6435-6445.Search in Google Scholar

[18] H. T. Khamees and S. M. Munaf, “A receiver intensity for super Lorentz Gaussian beam (SLG) propagation via the moderate turbulent atmosphere using a novelty mathematical model,” J. Opt. Commun., vol. 41, pp. 1–8, 2020. https://doi.org/10.1515/joc-2020-0062.Search in Google Scholar

Received: 2020-08-15
Revised: 2020-12-27
Accepted: 2021-01-14
Published Online: 2021-11-09

© 2021 Walter de Gruyter GmbH, Berlin/Boston

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