161
Views
14
CrossRef citations to date
0
Altmetric
Articles

Actively Floating Lossy Inductance Simulators Using Voltage Differencing Buffered Amplifiers

REFERENCES

  • S. Minaei and E. Yuce , “Realization of tunable active floating inductance simulators,” Int. J. Electron. , Vol. 95, no. 1, pp. 27–37, Jan. 2008.
  • R. Senani , “New single-capacitor simulation of floating inductors,” Electrocompon. Sci.Technol. , Vol. 10, pp. 7–12, Mar. 1982.
  • R. Senani and D. R. Bhaskar , “New lossy/loss-less synthetic floating inductance configuration realized with only two CFOAs,” Analog Integr. Circ. Sig. Process. , Vol. 73, pp. 981–7, Jun. 2012.
  • R. Senani , “New tunable synthetic floating inductors,” Electron. Lett. , Vol. 16, no. 10, pp. 382–3, May 1980.
  • D. R. Bhaskar and R. Senani , “Synthetic floating inductors realized with only two current feedback op-amps,” Am. J. Electr. Electron. Eng. , Vol. 3, no. 4, pp. 88–92, Sep. 2015.
  • E. Yuce , “New low component count floating inductor simulators consisting of a single DDCC,” Analog Integr. Circ. Sig. Process. , Vol. 58, pp. 61–66, Jan. 2009.
  • M. A. Ibrahim , S. Minaei , E. Yuce , N. Herencsar , and J. Koton , “Lossy/lossless floating/grounded inductance simulation using one DDCC,” Radioengineering , Vol. 21, no. 1, pp. 3–10, Apr. 2012.
  • R. Senani , “Network transformations for incorporating nonideal simulated immittances in the design of active filters and oscillators,” IEE Proc., Pt. G. , Vol. 134, no. 4, pp. 158–66, Aug. 1987.
  • R. Senani , “Floating immittance realization: Nullor approach,” Electron. Lett. , Vol. 24, no.7, pp.403–5, Mar. 1988.
  • W. Tangsrirat , “Synthetic grounded lossy inductance simulators using single VDIBA,” IETE J. Res. , Vol. 63, no. 1, pp. 134–41, Jan–Feb 2017.
  • F. Kacar , A. Yesil and A. Noori , “New CMOS realization of voltage differencing buffered amplifier and its biquad filter applications,” Radioengineering , Vol. 21, no. 1, pp. 333–9, Apr. 2012.
  • R. Sotner , J. Jerabek , and N. Herencsar , “Voltage differencing buffered/inverted amplifiers and their applications for signal generation,” Radioengineering , Vol. 22, no. 2, pp. 490–504, Jun. 2013.
  • A. Yesil , F. Kacar and K. Gurkan , “Lossless grounded inductance simulator employing single VDBA and its experimental band-pass filter application,” Int. J. Electron. Commun. (AEU ), Vol. 68, pp. 143–50, Feb. 2014.
  • C. Acar and S. Ozoguz , “A new versatile building block: current differencing buffered amplifier suitable for analog signal processing filters,” Microelectron. J ., Vol. 30, no. 2, pp. 157–60, Feb. 1999.
  • M. Tokmakci , “A novel CMOS defuzzification circuit employing current differencing buffered amplifier based current-mode multipliers,” Informacije MIDEM , Vol. 41, no. 1, pp. 65–69, Jan. 2011.
  • W. Tangsrirat , W. Surakampontron , and N. Fujii , “Realization of leapfrog filters using current differential buffered amplifiers,” IEICE Trans. Fund. , Vol. E86-A, no. 2, pp. 318–326, Feb. 2003.
  • T. Pukkalanun , N. Roongmuanpha and W. Tangsrirat , “Variable lossy series inductance simulator using single Voltage Differencing Buffered Amplifier (VDBA),” in International MultiConference of Engineers and Computer Scientists 2017, Hong Kong , Mar. 15–17, 2017, pp. 656–9.
  • A. Zeki and A. Toker , “DXCCII-based tunable gyrator,” Int. J. Electron. Commun. (AEU ), Vol. 59, no. 1, pp. 59–62, Mar. 2005.
  • H. Sedef and M. Koksal , “A new floating FDNR circuit using differential voltage current conveyors,” Int. J. Electron. Commun. (AEU ), Vol. 54, no. 5, pp. 297–301, May 2000.
  • S. Minaei , E. Yuce , and O. Cicekoglu , “A versatile active circuit for realizing floating inductance, capacitance, FDNR and admittance converter,” Analog Integr. Circ. Sig. Process. , Vol. 47, no. 2, pp. 199–202, May 2006.
  • H. Sedef , M. Sagbas , and A. Acar , “Current-controllable fully-integrated inductor simulator using CCCIIs,” Int. J. Electron. , Vol. 95, no. 5, pp. 425–9, May 2008.
  • M. Sagbas , U. E. Ayten , H. Sedef , and M. Koksal , “Floating immittance function simulator and its applications,” Circ. Syst. Sig. Process. , Vol. 28, no. 1, pp. 55–63, Feb. 2009.
  • M. Sagbas , U. E. Ayten , H. Sedef , and M. Koksal , “Electronically tunable floating inductance simulator,” Int. J. Electron. Commun. (AEU ), Vol. 63, no.5, pp. 423–7, May 2009.
  • J. W. Horng , “Lossless inductance simulation and voltage-mode universal biquadratic filter with one input and five outputs using DVCCs,” Analog Integr. Circ. Sig. Process. , Vol. 62, no. 3, pp. 407–13, Mar. 2010.
  • E. Yuce , “A novel floating simulation topology composed of only grounded passive components,” Int. J. Electron. , Vol. 97, no. 3, pp. 249–62, Mar. 2010.
  • P. V. Ananda Mohan , “Grounded capacitor based grounded and floating inductance simulation using current conveyors,” Electron. Lett. , Vol. 34, no. 11, pp. 1037–38, May 1998.
  • E. Yuce and S. Minaei , “Novel floating simulated inductors with wider operating-frequency ranges,” Microelectron. J ., Vol. 40, no. 6, pp. 928–38, Jun. 2009.
  • O. Channumsin and W. Tangsrirat , “Actively synthetic floating inductor using voltage differencing buffered amplifiers,” in International MultiConference. of Engineers and Computer Scientists 2016, Hong Kong , Mar. 16–18, 2016, pp. 620–623..
  • J. Pimpol , O. Channumsin , C. Thongsopa , and W. Tangsrirat , “VDIBA-based floating lossless inductance simulator employing a single grounded capacitor,” Far. East J. Electron. Commun. , Vol. 16, no. 3, pp. 615–27, Sep. 2016.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.