• DocumentCode
    29173
  • Title

    Synchrophasor-Based Auxiliary Controller to Enhance the Voltage Stability of a Distribution System With High Renewable Energy Penetration

  • Author

    Huaiguang Jiang ; Yingchen Zhang ; Zhang, Jun Jason ; Gao, David Wenzhong ; Muljadi, Eduard

  • Author_Institution
    Dept. of Electr. & Comput. Eng., Univ. of Denver, Denver, CO, USA
  • Volume
    6
  • Issue
    4
  • fYear
    2015
  • fDate
    Jul-15
  • Firstpage
    2107
  • Lastpage
    2115
  • Abstract
    Wind energy is highly location-dependent. Many desirable wind resources in North America are located in rural areas without direct access to the transmission grid. By connecting megawatt-scale wind turbines to the distribution system, the cost of building transmission facilities can be avoided and wind power supplied to consumers can be greatly increased; however, integrating megawatt-scale wind turbines on distribution feeders will impact the distribution feeder stability, especially voltage stability. Distributed wind turbine generators (WTGs) have the capability to aid in grid stability if equipped with appropriate controllers, but few investigations are focusing on this. This paper investigates the potential of using real-time measurements from distribution phasor measurement units for a new WTG control algorithm to stabilize the voltage deviation of a distribution feeder. This paper proposes a novel auxiliary coordinated-control approach based on a support vector machine (SVM) predictor and a multiple-input and multiple-output model predictive control on linear time-invariant and linear time-variant systems. The voltage condition of the distribution system is predicted by the SVM classifier using synchrophasor measurement data. The controllers equipped on WTGs are triggered by the prediction results. The IEEE 13-bus distribution system with WTGs is used to validate and evaluate the proposed auxiliary control approach.
  • Keywords
    IEEE standards; distributed power generation; phasor measurement; power distribution control; power grids; power system stability; predictive control; support vector machines; turbogenerators; wind power; wind turbines; IEEE 13-bus distribution system; North America; SVM predictor; WTG; auxiliary coordinated-control approach; distributed wind turbine generator; distribution feeder stability; distribution phasor measurement; grid stability; linear time-invariant system; linear time-variant system; megawatt-scale wind turbine; multiple input multiple output model predictive control; renewable energy penetration; support vector machine predictor; synchrophasor-based auxiliary controller; transmission grid; voltage deviation stabilization; voltage stability enhancement; wind energy; Phasor measurement units; Power system stability; Stability analysis; Support vector machines; Vectors; Voltage control; Voltage measurement; Distributed phasor measurement unit; linear time-variant (LTV) system; model predictive control (MPC); multiple-input and multiple-output (MIMO) control; support vector machine (SVM); wind turbine;
  • fLanguage
    English
  • Journal_Title
    Smart Grid, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1949-3053
  • Type

    jour

  • DOI
    10.1109/TSG.2014.2387012
  • Filename
    7015588