• DocumentCode
    3574237
  • Title

    Enhancement of voltage stability in transmission system using SSSC

  • Author

    Anitha, C. ; Arul, P.

  • Author_Institution
    Jayaram Coll. of Eng. & Technol., Trichy, India
  • fYear
    2014
  • Firstpage
    30
  • Lastpage
    33
  • Abstract
    Reactive power control is the basic requirement for maintaining the voltage levels thereby the stability of the interconnected power system. Voltage stability is the ability of the power system to maintain steady acceptable voltages at all buses in the system under normal operating conditions and after being subjected to a disturbance (reactive power balance). Modern power systems are at risks of voltage instability problems. The main cause of voltage instability may be due to the shortage of reactive power in power system. The voltage stability can be improved by increasing the reactive power. Many approaches used to prevent voltage instability, such as Placement of FACTS Controllers, Placement of series and parallel capacitors, Rescheduling of the generation, Under-voltage load shedding. The placement of FACTS controller can improve the voltage stability. Static Synchronous series compensator (SSSC) can increasing or decreasing the overall reactive voltage drop across the line and thereby controlling the transmitted electric power. The bus voltage magnitude will increase with the use of SSSC. In this work, the Newton Raphson iterative algorithm was adopted due to its ability to converge after a few iterations. Simulation of power flow solutions without and with SSSC was done using MATLAB based programme. The model is validated on IEEE 30-bus system.
  • Keywords
    Newton-Raphson method; electric potential; flexible AC transmission systems; load flow; load shedding; power system interconnection; power system stability; power transmission faults; reactive power control; static VAr compensators; FACTS controller placement; IEEE 30-bus system; Matlab based programme; Newton-Raphson iterative algorithm; SSSC; bus voltage magnitude; electric power transmission system; generation rescheduling; normal operating conditions; overall reactive voltage drop; power flow solution simulation; power system interconnection; power systems disturbance; reactive power control; series and parallel capacitor placement; static synchronous series compensator; steady acceptable voltage level stability enhancement; under-voltage load shedding; voltage instability problem risks; Circuit stability; Load flow; Power system stability; Power transmission lines; Reactive power; Stability analysis; Voltage control; FACTS Devices; Power flow; SSSC; Transmission system; Voltage stability;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Circuit, Power and Computing Technologies (ICCPCT), 2014 International Conference on
  • Print_ISBN
    978-1-4799-2395-3
  • Type

    conf

  • DOI
    10.1109/ICCPCT.2014.7054785
  • Filename
    7054785