Quadrature oscillator using grounded components with current and voltage outputs

Access Full Text

Quadrature oscillator using grounded components with current and voltage outputs

For access to this article, please select a purchase option:

Buy article PDF
£12.50
(plus tax if applicable)
Buy Knowledge Pack
10 articles for £75.00
(plus taxes if applicable)

IET members benefit from discounts to all IET publications and free access to E&T Magazine. If you are an IET member, log in to your account and the discounts will automatically be applied.

Learn more about IET membership 

Recommend Title Publication to library

You must fill out fields marked with: *

Librarian details
Name:*
Email:*
Your details
Name:*
Email:*
Department:*
Why are you recommending this title?
Select reason:
 
 
 
 
 
IET Circuits, Devices & Systems — Recommend this title to your library

Thank you

Your recommendation has been sent to your librarian.

This study proposes new third-order quadrature oscillator that provides several voltage and current outputs simultaneously. The circuit uses differential voltage current conveyors and grounded components, enjoys non-interactive frequency control and can be made resistor-less by using voltage-controlled differential voltage current conveyors. Non-ideal study and parasitic effects are also considered and their effects are discussed. The proposed theory is verified through PSPICE by good results.

Inspec keywords: SPICE; oscillators; voltage control; frequency control; conveyors

Other keywords: grounded components; third-order quadrature oscillator; voltage-controlled differential voltage current conveyors; PSPICE; parasitic effects; noninteractive frequency control

Subjects: Voltage control; Oscillators; Computer-aided circuit analysis and design; Electronic engineering computing; Frequency control; Power electronics, supply and supervisory circuits

References

    1. 1)
      • R. Senani . New canonic single resistor controlled oscillator using a single current conveyor. Electron. Lett. , 568 - 569
    2. 2)
      • A.U. Keskin , D. Biolek . Current mode quadrature oscillator using current differencing transconductance amplifier. IEE Proc. Circuits Devices Syst. , 214 - 218
    3. 3)
      • W. Chiu , S.I. Liu , H.W. Tsao , J.J. Chen . CMOS differential difference current conveyors and their applications. IEE Proc. Circuits Devices Syst. , 91 - 96
    4. 4)
      • P. Promme , K. Dejhan . An integrable electronic controlled sinusoidal oscillator using CMOS operational transconductance amplifier. Int. J. Electron. , 365 - 379
    5. 5)
      • B. Wilson . Recent developments in current conveyors and current mode circuits. IEE Proc. G , 61 - 77
    6. 6)
      • C. Toumazou , F.J. Lidgey , D.G. Haigh . (1990) Analog IC design: the current mode approach.
    7. 7)
      • S.S. Gupta , R. Senani . Realization of current mode SRCOs using all grounded passive elements. Frequenz , 26 - 37
    8. 8)
      • J. Mohan , S. Maheshwari , I.A. Khan . Mixed mode quadrature oscillator using a single FDCCII. J. Active Passive Electron. Devices , 227 - 234
    9. 9)
      • S.S. Gupta , R. Senani . Grounded-capacitor current-mode SRCO: novel application of DVCCC. Electron. Lett. , 195 - 196
    10. 10)
      • J.W. Horng , C.L. Hou , C.M. Chang , W.-Y. Chung , H.-W. Tang , Y-H. Wen . Quadrature oscillators using CCIIs. Int. J. Electron. , 21 - 31
    11. 11)
      • S. Maheshwari . A canonical voltage controlled VM-APS with a grounded capacitor. Circuits Syst. Signal Process. , 123 - 132
    12. 12)
      • H.O. Elwan , A.M. Soliman . Novel CMOS differential voltage current conveyor and its applications. IEE Proc. Circuits Devices Syst. , 856 - 860
    13. 13)
      • M. Kumngern , K. Dejhan . DDCC based quadrature oscillators with grounded capacitors and resistors. Active Passive Electron. Compon.
    14. 14)
      • K.C. Smith , A.S. Sedra . A second generation current conveyor and its applications. IEEE Trans. , 132 - 134
    15. 15)
      • A.M. Soliman . Simple sinusoidal RC oscillators using current conveyors. Int. J. Electron. , 309 - 311
    16. 16)
      • S.S. Gupta , R. Senani . Grounded capacitor SRCOs using a single differential difference complementary current feedback amplifier. IEE Proc. Circuits Devices Syst. , 38 - 48
    17. 17)
      • S. Maheshwari , I.A. Khan . Current controlled third order quadrature oscillator. IEE Proc. Circuits Devices Syst. , 605 - 607
    18. 18)
      • S. Maheshwari . High input impedance VM-APSs with grounded passive elements. IET: Circuits Devices Syst. , 72 - 78
    19. 19)
      • S.J.G. Gift . Multiphase sinusoidal oscillator system using operational amplifiers. Int. J. Electron. , 61 - 67
    20. 20)
      • S. Maheshwari . Grounded capacitor CM-APSs with high output impedance. J. Circuits Syst. Comput. , 567 - 576
    21. 21)
      • S. Maheshwari . High output impedance current-mode all-pass sections with two grounded passive components. IET Circuits Devices Syst. , 234 - 242
    22. 22)
      • V. Kumar , A.U. Keskin , K. Pal . DVCC based single element controlled oscillators using all grounded components and simultaneous current voltage mode outputs. Frequenz. , 7 - 8
    23. 23)
      • S. Maheshwari , I.A. Khan . Novel voltage/current mode translinear-C quadrature oscillator. J. Active Passive Electron. Devices , 235 - 239
    24. 24)
      • S.J.G. Gift . The applications of all-pass filters in design of multiphase sinusoidal systems. Microelectron. J. , 9 - 13
    25. 25)
      • M.T. Abuelma'atti , M.A. Al-qahtani . A new current controlled multiphase sinusoidal oscillator using translinear conveyors. IEEE Trans. CAS-II , 881 - 885
    26. 26)
      • S.S. Gupta , R. Senani . Realization of SRCOs using all grounded passive elements. Frequenz , 1 - 2
http://iet.metastore.ingenta.com/content/journals/10.1049/iet-cds.2009.0072
Loading

Related content

content/journals/10.1049/iet-cds.2009.0072
pub_keyword,iet_inspecKeyword,pub_concept
6
6
Loading