• DocumentCode
    135604
  • Title

    Modeling and analysis of an ePFC (enhanced power flow controller) with conduction angle control

  • Author

    Vaddiraj, Alekhya ; Manjrekar, Madhav

  • Author_Institution
    Dept. of Electr. & Comput. Eng., Univ. of North Carolina, Charlotte, NC, USA
  • fYear
    2014
  • fDate
    27-31 July 2014
  • Firstpage
    1
  • Lastpage
    5
  • Abstract
    Series Flexible AC Transmission Systems (FACTS) devices have been employed to increase power transfer capability of transmission networks and to provide direct control of power flow over designated transmission routes. However, high costs and reliability concerns associated with implementing one large FACTS device capable of altering the power flow in a wide transmission network have limited widespread deployment of FACTS solutions. Recently, concept of Distributed FACTS (D-FACTS) was proposed as an alternative approach to realize cost-effective power flow control through multiple, small, fixed series impedance injections. This paper extends the functionality of D-FACTS concept by introducing variability in impedance injection of D-FACTS devices, thereby improving their controllability. Furthermore, this paper also presents a more detailed analytical treatment of such a topology termed enhanced Power Flow Controller (ePFC). It is shown that employing 1st order (assume s sinusoidal voltage across compensation capacitor) and 2nd order (assumes sinusoidal current in the transmission line) fundamental impedance model are inaccurate methods to analyze effective impedance inserted by ePFC. Instead, a new mathematical model that is based on sinusoidal voltage difference between two end buses is proposed. The efficacy of this approach and its advantages as compared to existing models are presented.
  • Keywords
    compensation; controllability; flexible AC transmission systems; load flow control; power capacitors; power transmission control; power transmission lines; voltage control; compensation capacitor; conduction angle control; controllability improvement; cost-effective power flow control; direct power flow control; distributed FACTS; ePFC analysis; ePFC modeling; end buses; enhanced power flow controller; impedance injection; mathematical model; power transfer capability; series flexible AC transmission systems devices; sinusoidal current; sinusoidal voltage difference; transmission line; transmission networks; transmission routes; Capacitors; Impedance; Load flow; Mathematical model; Power transmission lines; Switches; Thyristors; Conduction Angle Control; Flexible AC Transmission Systems; Power Flow Control; Thyristor Controlled Series Compensation;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    PES General Meeting | Conference & Exposition, 2014 IEEE
  • Conference_Location
    National Harbor, MD
  • Type

    conf

  • DOI
    10.1109/PESGM.2014.6939487
  • Filename
    6939487