Yıl: 2011 Cilt: 11 Sayı: 2 Sayfa Aralığı: 1407 - 1412 Metin Dili: İngilizce İndeks Tarihi: 29-07-2022

Sythesis of resistively terminated LC ladder networks

Öz:
In this work, element value calculation algorithms have been proposed for low-pass, high-pass, bandpass and band-stop LC ladder networks. According to the calculated constant from the given transfer scattering matrix, the element type that will be extracted is decided. After calculating the element value, its transfer scattering matrix is obtained. Then transfer scattering matrix of the remaining network is calculated and the same procedure is applied until the termination resistance is reached. After explaining the algorithms, four examples are given to illustrate the utilization of the proposed method.
Anahtar Kelime:

Konular: Mühendislik, Elektrik ve Elektronik
Belge Türü: Makale Makale Türü: Araştırma Makalesi Erişim Türü: Erişime Açık
  • [1] N. Balabanian, “Network Synthesis”, Prentice- Hall, New Jersey, 1958.
  • [2] W. C. Yengst, “Procedures of Modern Network Synthesis”, The Macmillian Company, New York, 1964.
  • [3] D. M. Pozar, “Microwave Engineering”, 3rd
  • ed., John Wiley & Sons, Inc., 2005. [4] A. Aksen. “Design of lossless two-port with mixed lumped and distributed elements for broadband matching”, Ph.D. dissertation, Ruhr University, Bochum, Germany, 1994.
  • [5] L. Weinberg, P. Slepian, “Takahasi’s results on Chebysheff and Butterworth ladder networks”, IRE Trans. Circuit Theory, vol. CT-7, pp. 88- 101, Jun. 1960.
  • [6] R. Srinivasagopolan, B. A. Shenoi, “Necessary and sufficient conditions on the poles and zeros of the reflection coefficient for low-pass ladder networks”, IEEE Trans. Circuit Theory, vol. CT-18, pp. 247-254, Mar. 1971.
  • [7] P. A. Mariotto, “On the explicit formulas for the elements in low-pass ladder filters”, IEEE Trans. Circuit Syst., vol. CAS-37, pp. 1429- 1436, Nov. 1990.
  • [8] D. C. Fielder, “Numerical determination of cascaded LC network elements from return loss coefficients”, IRE Trans. Circuit Theory, vol. CT-5, pp. 356-359, Dec. 1958.
  • [9] H. J. Orchand, “Some explicit formulas for the components in low-pass ladder networks”, IEEE Trans. Circuit Theory, vol. CT-17, pp. 612-616, Nov. 1970.
  • [10] S. Parker, P. Chirlian, E. Peskin,” Continuants and the Synthesis of Low-Pass Resistively Ter- minated LC Ladder Networks”, IEEE Trans. Circuit Theory, vol. 13(2), pp. 209-212, Jun. 1966.
  • [11] M. Şengül, “Synthesis of cascaded lossless commensurate lines”, IEEE Trans. CAS-II: Express Briefs, vol. 55(1), pp. 89-91, Jan. 2008.
  • [12] M. Şengül, Z. Aydogar, “Transfer matrix facto- rization based synthesis of resistively termina- ted LC ladder networks”, Int. Conf. Electrical and Electronics Engineering, Eleco 2009, vol. II, pp. 74-77, Bursa, Turkey.
  • [13] M. Şengül, Z. Aydogar, “Synthesis of resistively terminated high-pass LC ladder networks”, Nat. Conf. Electrical and Electronics Engineering, Eleco 2010, vol. II, pp. 1-4, Bursa, Turkey.
  • [14] M. Şengül, “Circuit models with mixed lumped and distributed elements for passive one-port devices”,, Ph.D. dissertation, Işık University, İstanbul, Turkey, 2006.
  • [15] H. J. Carlin, P. P. Civalleri, “Wideband Circuit Design”, CRC Press LLC, 1998.
  • [16] A. Fettweis, “Factorization of transfer matrices of lossless two-ports”, IEEE Trans. Circuit Theory, vol. 17, pp. 86-94, Feb. 1970.
  • [17] A. Fettweis, “Cascade synthesis of lossless two-ports by transfer matrix factorization”, in R.Boite, ed., Network Theory, Gordon & Breach, pp. 43-103, 1972.
APA ŞENGÜL M (2011). Sythesis of resistively terminated LC ladder networks. , 1407 - 1412.
Chicago ŞENGÜL Metin Sythesis of resistively terminated LC ladder networks. (2011): 1407 - 1412.
MLA ŞENGÜL Metin Sythesis of resistively terminated LC ladder networks. , 2011, ss.1407 - 1412.
AMA ŞENGÜL M Sythesis of resistively terminated LC ladder networks. . 2011; 1407 - 1412.
Vancouver ŞENGÜL M Sythesis of resistively terminated LC ladder networks. . 2011; 1407 - 1412.
IEEE ŞENGÜL M "Sythesis of resistively terminated LC ladder networks." , ss.1407 - 1412, 2011.
ISNAD ŞENGÜL, Metin. "Sythesis of resistively terminated LC ladder networks". (2011), 1407-1412.
APA ŞENGÜL M (2011). Sythesis of resistively terminated LC ladder networks. Istanbul University Journal of Electrical and Electronics Engineering, 11(2), 1407 - 1412.
Chicago ŞENGÜL Metin Sythesis of resistively terminated LC ladder networks. Istanbul University Journal of Electrical and Electronics Engineering 11, no.2 (2011): 1407 - 1412.
MLA ŞENGÜL Metin Sythesis of resistively terminated LC ladder networks. Istanbul University Journal of Electrical and Electronics Engineering, vol.11, no.2, 2011, ss.1407 - 1412.
AMA ŞENGÜL M Sythesis of resistively terminated LC ladder networks. Istanbul University Journal of Electrical and Electronics Engineering. 2011; 11(2): 1407 - 1412.
Vancouver ŞENGÜL M Sythesis of resistively terminated LC ladder networks. Istanbul University Journal of Electrical and Electronics Engineering. 2011; 11(2): 1407 - 1412.
IEEE ŞENGÜL M "Sythesis of resistively terminated LC ladder networks." Istanbul University Journal of Electrical and Electronics Engineering, 11, ss.1407 - 1412, 2011.
ISNAD ŞENGÜL, Metin. "Sythesis of resistively terminated LC ladder networks". Istanbul University Journal of Electrical and Electronics Engineering 11/2 (2011), 1407-1412.